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V. Frontier technology: evidence, costs and windows

The evidence and calculations behind chapter 16: an evidence card for each of eleven frontier routes, the energy, hydrogen, CO2 and cost arithmetic for protein from power in Vietnam, learning rates and cost paths, carbon prices and carbon cost per tonne of protein, AI and bio-design, approvals and capital, the research pipeline and the windows table. Every Vietnamese cost and window is our estimate from stated inputs, not a forecast.

32 phút đọcÝ nghĩa các nhãn

Nội dung trang này bằng tiếng Anh. Đọc bản tóm tắt tiếng Việt

Trong trang này
  1. V.1 Frontier map: one card per route
  2. V.2 Power-to-protein in Vietnam: the arithmetic
  3. V.3 Learning rates and cost paths
  4. V.4 Carbon
  5. V.5 AI and bio-design
  6. V.6 Approvals and capital
  7. V.7 Research pipeline
  8. V.8 Windows for Vietnam
  9. V.9 Gaps and open questions
  10. Data files

What this appendix contains. The detail behind Frontier technology: an evidence card for each of eleven frontier routes (V.1); the arithmetic for protein made from renewable power in Vietnam (V.2); learning rates and cost paths (V.3); carbon prices and carbon cost per tonne of protein (V.4); AI and bio-design (V.5); approvals and capital (V.6); the research pipeline (V.7); and the windows table (V.8).

How to use it. Read a route's card before pricing a deal or programme in it. Test any cost claim against V.2 and V.3. Use V.8 for the condition that opens each window, and X. Drivers and signals for the signposts.


V.1 Frontier map: one card per route

Each card gives the status in 2026, the largest plant, cost evidence, failures, Vietnam's base, the window and its conditions. Full registers: frontier_gas_tech.csv, frontier_bio_tech.csv, feedstock_futures.csv.

V.1.1 Power-to-protein (hydrogen-oxidising bacteria)

ItemEvidence
Status 2026Food grade at technology readiness level (TRL) 7, approved in Singapore (2022), US notice filed May 2026; feed grade TRL 5 to 6 with no plant 2,3,4
Largest plantSolar Foods, Finland: 160 to 230 t a year (company 160, press 230; we give both). A 3,200 t plant targets late 2028; the investment decision was pending in September 2026 5,6
Cost evidenceEUR 4.0 to 4.5 per kg of protein (2030) and 2.1 to 2.3 (2050) at the best global sites 2 (Fasihi et al. published model). The 3,200 t plan implies about EUR 60,000 per annual t of product, several times the model's first-plant capex (our derivation) 3 . Vietnam: V.2.4
FailuresNovoNutrients closed and Arkeon became insolvent in 2025, both on capital intensity; Solar Foods made an operating loss of EUR 6.8 million in H1 2026 7,8,3
Vietnam base2 of 494 papers (2016 to 2026); no project 9
WindowBulk feed 2040 to 2045 at the earliest
ConditionsThe five conditions in V.2.6
2 of 494 papers
Số công trình của Việt Nam về đạm lên men khí
2016 to 2026
Bối cảnh và nguồn

Publications on gas- or CO2-based microbial protein, 2016 to 2026: China 105, US 64, Denmark 47, Vietnam 2. 9,10

Frontier technology →

V.1.2 Methane and steel-gas protein

ItemEvidence
Status 2026Methane protein TRL 8, approved for Chinese aquafeed (2024); steel-gas protein (Clostridium autoethanogenum protein, CAP) TRL 9 in China as an ethanol co-product, certified in 2021 11,12
Largest plantCalysseo, Chongqing: 20,000 t a year, halted in 2026. Shougang LanzaTech made 10,200 t of protein in 2023, at 0.1 to 0.15 t per t of ethanol 11,13,14 . Unibio plans 50,000 t in Saudi Arabia from 2028, with Asia as a target market 15
Cost evidenceOne model: USD 1.10 to 2.57 per kg of protein 16 . Our arithmetic: 1.7 kg of methane per kg of protein x 0.0526 MMBtu per kg = 0.089 MMBtu; at USD 8 to 14 per MMBtu (the top is MOIT's 2026 LNG basis) the gas alone costs USD 720 to 1,250 per t of protein, about the whole price of soybean-meal protein 17
FailuresCalysseo: 2025 revenue USD 0.71 million, loss USD 15.5 million, loan not renewed; a 1990s Norwegian plant failed on the gas price; CAP's plan for 120,000 t more by 2026 was not met, with a minus 9.2% gross margin in H1 2024 11,18,13
Vietnam baseNo project. Hoa Phat burns its steel-mill gas for 80 to 90% of its power, so the gas has a power value 19
WindowImported methane or CAP protein from about 2028; a CAP-type co-product only inside a steel-gas ethanol or aviation-fuel project, 2030s
ConditionsMethane below about USD 5 per MMBtu; a feed-list entry; shrimp-feed buyers paying for function

V.1.3 Biomass fermentation on sugar and side streams

ItemEvidence
Status 2026TRL 8 to 9; China approved mycoprotein for food in 2025 20
Largest plantAngel Yeast, 11,000 t a year of yeast protein (November 2025); Cabio with Nourish, about 170,000 t of finished-product capacity 21,22 . Enifer is building a 3,000 t PEKILO plant (Finland) and piloting on ethanol stillage (Brazil) 23
Cost evidenceVietnamese fungal feed protein USD 4,050 to 14,700 per t of protein at 2026 prices (Economics); floor and cost paths in V.3.2. A plant costing USD 100 million in the US costs about USD 15 million in China 22
FailuresMeati (US mycoprotein) failed in 2025 despite commercial output 24
Vietnam baseThai Duong Feed JSC's 2016 to 2019 national project made yeast protein (above 46% protein) from cereals and molasses: 120 t of liquid product, a VND 167 billion line; status now unknown 25,26
WindowFeed single-cell protein 2027 to 2030; food mycoprotein 2030 to 2035
ConditionsAn aquafeed-list entry for microbial biomass and one anchor mill; a new-food route for food

V.1.4 Precision fermentation

ItemEvidence
Status 2026High-value proteins TRL 8 to 9; dairy and egg proteins TRL 7 to 8. Four or more US "no questions" letters in 2025, one for a Chinese firm; approvals in V.6.1 27,28,29
Largest plantNot disclosed in our sources
Cost evidenceTargets only, no model outputs (V.3.4); economic now for high-value proteins such as lactoferrin (USD 750 to 1,500 per kg) 30,31
FailuresPatent disputes over strains and proteins (Onego Bio and VTT, The EVERY Company, Fonterra, Perfect Day, Impossible Foods, Motif) 27
Vietnam base2 indexed papers (2015 to 2025); no food-grade contract fermentation; Decree 43/2026 sets first rules for genetically modified microbes in closed production 32,33
WindowContract manufacture of high-value proteins 2030 to 2035; commodity dairy and egg proteins 2035 to 2040 at the earliest
ConditionsA first closed-production GMO certificate; clearance by reliance on US or Singapore decisions; regional food-grade contract capacity above 10 m3; patent expiries (V.6.3)

V.1.5 AI-assisted bio-design and biofoundries

ItemEvidence
Status 2026Media and process optimisation TRL 6 to 7; generative design of food proteins TRL 4 to 6; autonomous biofoundries TRL 5 to 6 (our judgement) 34,35,36
Largest facilityThe acceleration results came from biofoundries (iBioFAB, Illinois), not from software alone 37,35
Cost evidence1.6 to 30 times fewer experiments; no lower production cost at scale shown (V.5.1)
Failures and limitsAdoption "far below the ceiling"; open data is "the binding constraint" 38
Vietnam baseTop-40 AI compute; no biofoundry (V.5.2)
WindowDesign now to 2030; domestic build-and-test 2030 to 2035
ConditionsA lab with a reliable assay and data scientists; access to a regional biofoundry; open data for public projects

V.1.6 Cellulosic (second-generation) sugar

ItemEvidence
Status 2026TRL 7 to 8, but no plant has run reliably at design output. Every Western commercial cellulosic ethanol plant has shut, the last being Clariant's Podari plant (63 million litres a year, USD 258 million) in December 2023 39,40
Largest Asian plantPanipat, India (about 200,000 t of straw a year): next to no output in year one, 62% of design in December 2025; three other Indian plants paused 41,42
Cost evidenceMature-plant models USD 342 to 467 per t of sugar; a lab-optimised Indian bagasse process USD 1,320 43,44,45 ; Vietnamese cassava glucose USD 511 to 560 (April 2026) 46 . First plants: USD 2,090 (Panipat) to 2,380 (Podari) per t of annual sugar capacity, about USD 3,400 per delivered t at 62% use (our derivation)
FailuresAs above. Not low-carbon by default: 1.57 kg CO2e per kg of bagasse sugar against 0.60 to 0.97 for Thai cassava starch 45,47
Vietnam baseNo plant or pilot; enzyme costs still named as the barrier (June 2026); about 52 Mt of straw a year, 30% of Mekong straw collected 48,49,50
WindowModest scale in the 2040s
ConditionsAn Asian straw-sugar plant above 80% of design for two years; a traded straw price; full straw collection on the 1 million ha rice programme by 2030 51 (official target)

Scale (our calculation, ngf_calc.py): the 2050 S-ALT sugar need of 1.32 Mt of glucose would take 3.0 to 4.3 Mt of straw (6 to 10% of national straw) and USD 2.8 to 4.5 billion of first-generation plants, 15 to 21 of Panipat's size . Feedstock cases: Z. Aquafeed and feedstocks 2050.

V.1.7 One-carbon (methanol) routes

ItemEvidence
Status 2026Methanol-fed Pichia pastoris at pilot scale in China: 0.43 g of biomass per g of methanol at 50.6% protein, about 4.6 t of methanol per t of protein 52 ; electro-microbial routes TRL 3 to 4 53,54
Largest plantA "10,000 t class" Chinese demonstration is referred to but not verified 55
Cost evidencee-methanol USD 800 to 2,400 per t today; USD 250 to 630 per t in 2050 (USD 287 to 724 per t of sugar equivalent) 56 (IRENA published model). Vietnam: USD 785 to 1,112 per t of sugar equivalent at 2026 hydrogen costs, USD 495 to 695 at USD 1.5 to 2 per kg of hydrogen, about cassava-glucose parity (our calculation)
FailuresICI's Pruteen was discontinued for financial reasons 2
Vietnam baseBSR at Dung Quat (Quang Ngai) researches methanol from captured CO2; no methanol-protein work 57
Window2040s, at modest scale
ConditionsHydrogen at USD 1.5 to 2 per kg; a Chinese feed certificate for methanol protein

Our calculation for 2050: supplying the S-ALT sugar need through methanol takes about 1.5 Mt of methanol, 0.29 Mt of green hydrogen (1.5 to 2.9% of the 2050 target) and about 16 TWh; about 49 MWh per t of protein, below direct hydrogen fermentation but with heavy cooling .

V.1.8 Cultivated meat and seafood

ItemEvidence
Status 2026Meat TRL 6 to 7, seafood 5 to 6; seven companies cleared in Singapore, the US, Australia and New Zealand; Singapore cleared cultivated beef (4 August 2026); no EU authorisation 58,59,60
Largest plantVow, Sydney: 20,000 L; most firms below 1,000 L 58
Cost evidenceFrom USD 2.3 million per kg (2013) to about USD 63 per kg 61; media claims of USD 0.20 per litre against a peer-reviewed USD 0.63 58 . 1% of world meat would need about 30 times the 2021 world culture capacity; pharmaceutical-grade media give 4 to 25 times beef's emissions 62
FailuresBeliever Meats shut in December 2025 after FDA clearance; firms fell from 155 to 142; investment from about USD 1 billion (2021) to 73.9 million (2025) 58,60,38
ForecastsA 54% chance that world output stays below 100,000 t a year through 2051 63 (published probabilistic forecast); hybrids "may reach foodservice price points first within the decade", that is by about 2035 64 (published review)
Vietnam base1 indexed paper (legal); VAST characterised bovine stem cells in 2025 32
WindowResearch only to 2035; seafood cells from Vietnamese species in the 2040s
ConditionsA food-grade fish or shrimp cell line; peer-reviewed media below about USD 0.5 per litre; a novel-food route with reliance

V.1.9 Molecular farming

ItemEvidence
Status 2026TRL 5 to 7; US plant-pest clearances in 2024 for soybean with pork proteins and pea with bovine myoglobin; no completed FDA food review found 65,66
Cost evidenceAbout 50 to 300 kg of target protein per ha (our estimate: soybean at 1.5 to 3.5 t per ha x 38% protein x 80% soluble x 26.6% target, a company claim; maize myoglobin about 48 kg per ha) 67
FailuresMoolec merged into Bioceres entities, one of over 40 sector closures and deals in 2024 to 2025 68
Vietnam baseGM maize grown since 2015; duckweed germplasm; no project; 0 papers 69,32
WindowContained hosts for heme, enzymes or growth factors, 2035 to 2045
ConditionsA biosafety route under Decree 43/2026; a first foreign food approval

V.1.10 Cell-free protein synthesis

ItemEvidence
Status and costFood TRL 2 to 3; largest scale-up 100 L; about USD 2.8 per mg at best, 5 to 6 orders of magnitude above food protein (about 8 for PURE systems at about USD 580 per mg) 70,71
Vietnam baseNone; low-cost teaching kits exist 72
WindowPrototyping now; bulk food not before 2050

V.1.11 Algal and oilseed omega-3 (brief)

ItemEvidence
StatusCommercial: a USD 200 million algal-oil plant (2019); omega-3 canola oil replaced all fish oil in low-fishmeal shrimp diets 73,74
Vietnam base and windowBuyer only; 2026 to 2035 . Detail in Z. Aquafeed and feedstocks 2050

V.2 Power-to-protein in Vietnam: the arithmetic

Script: ftg_estimates.py. Results in V.2.2 to V.2.6 are our calculations .

V.2.1 Inputs

InputValueSource
Electricity per t of protein2030 design: 69.3 MWh on baseload, 73 to 83 MWh generated from solar and wind (electrolysers 54 to 56%); 2050 design: 60.9 and 64 to 70 MWh2 (published model)
Hydrogen, CO2, ammonia per t of protein0.69 t (0.451 kg per kg of dry cells at 65% protein); 2.95 t; 0.24 t2
Capacity factors, VietnamSolar 17%; offshore wind 43 to 51.4%75
Solar farm density75 to 109 MW per km22
Plans for 2050Electricity 1,360 to 1,511 TWh; solar 293 to 296 GW; 240 GW of offshore wind for hydrogen and ammonia; power-sector emissions about 27 Mt (197 to 199 Mt in 2030)76 (official target)
Clean hydrogen targets100 to 500 kt (2030); 10 to 20 Mt (2050); no cost target77 (official target)
Grid factor0.6592 t CO2 per MWh (2023)78
Solar costUSD 29 to 85 per MWh (2030), 18 to 64 (2050); hurdle rates 8.5 to 16%75 (BloombergNEF published model)
Hydrogen cost, southUSD 2.81 to 2.85 per kg (6% discount rate; we treat it as a lower bound)79

Steps: TWh = t of protein x MWh per t / 1,000,000; solar GW = TWh x 1,000,000 / (8,760 x 0.17) / 1,000; land = MW / (75 to 109).

V.2.2 Energy, hydrogen, CO2, land and grid carbon

OutputDesignTWh a yearSolar GWor offshore wind GWSolar land, km2H2, MtCO2, Mt
100 kt of protein20307.3 to 8.34.9 to 5.61.6 to 2.245 to 740.0690.30
1 Mt203073 to 8349 to 5616 to 22450 to 7430.692.95
100 kt20506.4 to 7.04.3 to 4.71.4 to 1.939 to 630.0690.30
1 Mt205064 to 7043 to 4714 to 19394 to 6270.692.95

The 500 kt rows are in working-papers/wave3/frontier_gas/frontier_gas.md. Against the plans (our calculation from 2,76,77) :

  • 1 Mt of protein a year takes 4.2 to 6.1% of planned 2050 electricity, 15 to 19% of the 2050 solar plan and 3.5 to 6.9% of the 2050 hydrogen target.
  • 100 kt a year would take 14 to 69% of the whole 2030 hydrogen target.
  • All the protein in 2025 soybean-meal imports (2.62 Mt) would need 168 to 218 TWh, 113 to 146 GW of solar (38 to 50% of the 2050 plan) and 1.8 Mt of hydrogen: physically possible, economically not (V.2.4 and V.2.5).
  • Land: about 13 to 22 t of protein per ha of panels, over ten times any staple crop 80 .

Grid carbon, electricity only: about 46 t CO2 per t of protein at the 2023 factor; 24 to 28 t at the 2030 average implied by the power plan (0.35 to 0.40 t per MWh, an upper bound); 1.1 to 1.4 t in 2050 (0.018 to 0.020), if the plan's 27 Mt cap is met . Dedicated renewables are a precondition until about 2045.

64 to 83 TWh (4 to 6% of planned 2050 supply)
Điện năng cần cho 1 triệu tấn đạm từ điện mỗi năm
2030 to 2050 plant designsTính toán của nhóm nghiên cứu
Bối cảnh và nguồn

Also 43 to 56 GW of solar or 14 to 22 GW of offshore wind, 0.69 Mt of hydrogen (3.5 to 6.9% of the 2050 hydrogen target) and 2.95 Mt of CO2. Our calculation from a published model and Vietnam's power and hydrogen plans. 2,76,77

Frontier technology →

V.2.3 CO2 point sources

From co2_point_sources_vn.csv (18 rows):

Site (province)SectorCO2, t a yearNoteSource
Dung Quat steel, Hoa Phat (Quang Ngai)Steelabout 17,000,000 (our derivation, 75% of group Scope 1)Off-gas already burned for power19
Hoa Phat, Hai Phong (former Hai Duong) and other sitesSteelabout 5,600,000As above19
Three ethanol plants: Dung Quat (Quang Ngai), Dai Tan (Da Nang, former Quang Nam), Tung Lam (Dong Nai)Fuel ethanolabout 82,000, 75,000 and 50,000 (our estimate)Fermentation CO2, over 95% pure57
An Khe ethanol, Gia Lai (planned 2028)Fuel ethanolabout 50,000 if builtAs above57
Phu My (Ho Chi Minh City, former Ba Ria-Vung Tau), Ca Mau, Ha Bac (Bac Ninh, former Bac Giang) and Ninh Binh fertiliser plantsAmmonia and ureaNot foundPure CO2, mostly used for urea; coal-based plants may have a surplus (our inference)81

Readings : the three ethanol plants release about 0.21 Mt a year, less than the 0.30 Mt that 100 kt of protein needs but enough for pilots up to about 70 kt; 1 Mt of protein needs about 13% of Hoa Phat's 2025 Scope 1 emissions (22.5 Mt), but that gas already makes power; volumes at fertiliser plants, refineries and Formosa Ha Tinh are unknown.

V.2.4 Cost estimates for 2030, 2040 and 2050

Method: electricity use x Vietnamese supply price (solar cost x 1.4 to 1.54 for balancing), plus the model's non-energy costs x 1.15 to 1.35 for a Vietnamese cost of capital of about 9 to 11%, against 7% in the model 2,75.

YearMWh per t of proteinPower, USD per MWhNon-energy at 7%, USD per tResult, USD per t of proteinBest global sites, USD per t
203075 to 8345 to 903,044 to 3,8046,900 to 12,6004,800 to 5,400
204070 to 7832 to 702,100 to 2,340 (interpolated)4,700 to 8,6003,720 to 4,200 (2035)
205065 to 7225 to 571,440 to 1,8003,300 to 6,5002,520 to 2,760

Vietnamese columns ; best sites (Fasihi et al. published model, EUR x 1.2). On grid power at today's USD 75 per MWh, a 2030 plant would cost USD 8,700 to 10,300 per t and emit about 46 t CO2 per t . In the model, cost of capital plus or minus 2 points moves cost 12 to 15%; the high electrolyser-cost case adds only 3 to 6% 2 .

USD 3.3 to 6.5 per kg of protein
Giá thành đạm từ điện sản xuất tại Việt Nam năm 2050
2026 inputsTính toán của nhóm nghiên cứu
Bối cảnh và nguồn

Our estimate for hydrogen-route protein made in Vietnam: USD 6.9 to 12.6 per kg (2030), 4.7 to 8.6 (2040), 3.3 to 6.5 (2050), against fishmeal protein at 2.6 to 3.8 and soybean-meal protein at about 0.88 per kg (2025 to 2026 prices). 2,75

Frontier technology →

V.2.5 Hydrogen-price sensitivity and parity

A plant buying hydrogen pays about USD 690 per t of protein for each USD 1 per kg of hydrogen (0.694 t per t). At USD 1, 2, 3 and 5 per kg the hydrogen line alone is USD 694, 1,388, 2,082 and 3,469 per t of protein; at USD 2 it exceeds the whole price of soybean-meal protein .

Breakeven delivered hydrogen price (point-source CO2 at USD 20 to 50 per t; non-hydrogen costs at a Vietnamese cost of capital) :

Price to beat, USD per t of protein2030 plant costs2050 plant costs
Soybean-meal protein, 880NoneNone
Fishmeal protein, 2025 average, 2,625NoneUSD 1.1 per kg or less, best case only
80% of August 2026 fishmeal protein, 3,077NoneUSD 1.8 per kg or less, best case only
Fishmeal protein, August 2026, 3,846About USD 0.3 per kg, best case onlyUSD 0.7 to 2.9 per kg

Parity. The Vietnamese cost reaches the fishmeal-protein band only at its low end and only around 2050, and never approaches soybean-meal protein under published projections . Today's Vietnamese hydrogen costs (USD 2.81 to 3.88 per kg) sit above most breakevens 79 .

Frontier protein costs against the prices to beat

USD per kg of protein; ranges by year; fishmeal and soybean-meal protein at 2025 to 2026 prices

Frontier protein costs against the prices to beatRange bars: protein from power made in Vietnam falls from USD 6.9 to 12.6 per kg (2030) to 3.3 to 6.5 (2050); fungal feed protein from 3.0 to 12.5 to 2.2 to 9.5. Fishmeal protein costs 2.6 to 3.8 and soybean-meal protein 0.88 per kg. Only the low ends reach the fishmeal band; none reaches soybean meal.Protein from power, made in VietnamProtein from power, best global sitesFungal feed protein on cassava glucose, VietnamFishmeal protein (2025 to 2026 prices)Soybean-meal protein (2025 to 2026 prices)Fungal protein floor with free capital (2026 inputs)024681012USD per kg of proteinfishmeal protein (2025 to 2026 prices): USD 2.6 to 3.8 per kg Type: actual Note: Band across all years Sources: GT-15Fishmeal 2.6 to 3.8soybean-meal protein (2025 to 2026 prices): USD 0.88 per kg Type: actual Note: Line across all years Sources: GT-14Soybean meal 0.88fungal protein floor with free capital (2026 inputs): USD 1.87 per kg Type: estimate Note: Our calculation (ecf_calc.py); line across all years Sources: COST-01; COST-43Fungal floor 1.87Protein from power, made in Vietnam, 2030: USD 6.9 to 12.6 per kg of protein Type: estimate Note: Our calculation (ftg_estimates.py) Sources: FTG-01; FTG-1912.66.9Protein from power, made in Vietnam, 2040: USD 4.7 to 8.6 per kg of protein Type: estimate Sources: FTG-01; FTG-198.64.7Protein from power, made in Vietnam, 2050: USD 3.3 to 6.5 per kg of protein Type: estimate Sources: FTG-01; FTG-196.53.3Protein from power, best global sites, 2030: USD 4.8 to 5.4 per kg of protein Type: projection Note: EUR 4.0 to 4.5 converted; 7% WACC Sources: FTG-015.44.8Protein from power, best global sites, 2035: USD 3.7 to 4.2 per kg of protein Type: projection Sources: FTG-014.23.7Protein from power, best global sites, 2050: USD 2.5 to 2.8 per kg of protein Type: projection Sources: FTG-012.82.5Fungal feed protein on cassava glucose, Vietnam, 2030: USD 3.0 to 12.5 per kg of protein Type: estimate Note: Our calculation (ecf_calc.py); fast-case low end to central-case high end Sources: COST-01; COST-43; ECF-01; ECF-0212.53.0Fungal feed protein on cassava glucose, Vietnam, 2040: USD 2.4 to 10.8 per kg of protein Type: estimate Sources: COST-01; COST-43; ECF-01; ECF-0210.82.4Fungal feed protein on cassava glucose, Vietnam, 2050: USD 2.2 to 9.5 per kg of protein Type: estimate Sources: COST-01; COST-43; ECF-01; ECF-029.52.22030203520402050Protein from power reaches the fishmeal band only at its low end, around 2050; fungal protein's low end isinside the band from 2030; neither reaches soybean meal.

Vietnamese values are our calculations with Vietnamese inputs; global values are a published model (7% WACC).

Nguồn: 2,75,82,83,84,85,86,87

Xem số liệuẨn số liệu
Frontier protein costs against the prices to beat
SeriesYearLow (USD per kg of protein)High (USD per kg of protein)TypeNote
Protein from power, made in Vietnam20306.912.6estimateOur calculation (ftg_estimates.py)
Protein from power, made in Vietnam20404.78.6estimate
Protein from power, made in Vietnam20503.36.5estimate
Protein from power, best global sites20304.85.4projectionEUR 4.0 to 4.5 converted; 7% WACC
Protein from power, best global sites20353.74.2projection
Protein from power, best global sites20502.52.8projection
Fungal feed protein on cassava glucose, Vietnam20303.012.5estimateOur calculation (ecf_calc.py); fast-case low end to central-case high end
Fungal feed protein on cassava glucose, Vietnam20402.410.8estimate
Fungal feed protein on cassava glucose, Vietnam20502.29.5estimate
Reference: fishmeal protein (2025 to 2026 prices)20262.63.8actualBand across all years
Reference: soybean-meal protein (2025 to 2026 prices)20260.880.88actualLine across all years
Reference: fungal protein floor with free capital (2026 inputs)20261.871.87estimateOur calculation (ecf_calc.py); line across all years

V.2.6 The five conditions

ConditionThreshold (our estimate)What sources sayEarliest it might be met
1. Delivered green hydrogenAbout USD 1.5 to 2 per kg or lessUSD 2.81 to 3.88 today; USD 3.05 (2030) and 1.59 (2050) cited 79About 2045 to 2050
2. Firmed renewable powerAbout USD 30 to 45 per MWh or lessSolar low end USD 29 (2030), 18 (2050) before balancing 75Best sites 2030s; typical sites 2040s
3. CapitalPlant near EUR 4,000 per annual t of protein; cost of capital about 8% or lessModel paths EUR 4,371 (2035, advanced) and 3,702 (2050); hurdle rates 8.5 to 16% 2,752035 with concessional finance, else 2050
4. PriceFishmeal protein above about USD 3,000 per t, sustained, or a carbon price on competing proteinNo official fishmeal forecast beyond 2027; carbon market excludes agriculture 87,88Uncertain
5. RulesFeed-list entry for bacterial biomass (MAE); new-food route (MOH)Food Safety Law window 2026 to 2027 892027 to 2030

Also needed: CO2 at USD 20 to 50 per t beside power and hydrogen (available now for pilots); and one hydrogen-route plant above 10 kt a year running two years abroad, not before about 2032 5 . Earlier, narrower windows: formulating imported, approved food ingredients from about 2028 if a new-food route exists; a CAP-type co-product in the 2030s; a 100 to 1,000 t research pilot on ethanol-plant CO2 now to 2030 .


V.3 Learning rates and cost paths

V.3.1 Learning-rate evidence

A 20% learning rate means unit cost falls 20% each time cumulative output doubles. Full table: learning_rates.csv (21 rows).

IndustryLearning ratePeriodSource
Sugarcane ethanol, Brazil19% processing; 20% total cost1975 to 200584,85
Corn ethanol, United States13%1983 to 200584,90
Rapeseed biodiesel, Germany3%1991 to 200485
Lignocellulosic ethanol, biomass diesel1 to 2% (bottom-up estimates, not observed)Forward85
Cellulosic ethanol, US planning assumption10 to 25% (assumed)2022 outlook84
Solar, wind, batteriesCosts fell near 10% a yearAbout 1990 to 202091
Any alternative proteinNone found: 9 works combine the terms (2015 to 2026), none empirical2015 to 202692

Complex, site-built and customised plants learn more slowly than mass-produced panels and cells 93,94 . We use 5 to 20% on capital cost and treat solar-style curves for fermented protein as unsupported . Big historic bioprocess cost falls came from titre and yield (penicillin titres rose 225-fold in 1941 to 1944), not from building identical plants 95 .

13 to 20%
Mức giảm chi phí mỗi lần sản lượng tăng gấp đôi trong ngành lên men
1975 to 2005 data
Bối cảnh và nguồn

US corn ethanol 13% (1983 to 2005); Brazilian cane ethanol 19 to 20% (1975 to 2005). No observed learning rate exists for any alternative protein. 84,85,91,92

Frontier technology →

V.3.2 Fungal feed protein: floor and planning range

Script: ecf_calc.py, part A. Learning applies only to capital charge and maintenance in edition 1.0's cost stack A (10,000 t a year; Economics); glucose, urea, power, labour and land stay at 2026 real prices.

Input, USD per t of product (2026)Low-cost endHigh-cost end
Total cost2,2276,612
Capital charge960 (12% a year)3,600 (18% a year)
Maintenance240800
Operating cost1,0272,212
Protein content55%45%
Floor with free capital, USD per t of protein1,8674,916
ScenarioLearning rateDoublings of global capacity by 2030 / 2040 / 2050203020402050, USD per t of protein
Slow5%1 / 3 / 43,940 to 14,2003,740 to 13,3003,640 to 12,880
Central12%2 / 4 / 63,560 to 12,4903,180 to 10,7802,880 to 9,460
Fast20%3 / 6 / 82,980 to 9,9202,440 to 7,4802,230 to 6,560

All rows: our calculation . Eight doublings (256 times today's capacity) is an outer bound.

Planning range : about USD 3,000 to 12,500 per t of protein in 2030, 2,400 to 10,800 in 2040 and 2,200 to 9,500 in 2050 (fast-case low end to central-case high end). The low end needs cheap capital, residue carbon and a heat-tolerant strain.

  • The floor, not learning, settles the soybean question: about USD 1,870, 2.1 times soybean-meal protein.
  • Fishmeal parity needs fast learning or cheap capital. The low end is below the August 2026 fishmeal-protein price from 2030 (central and fast cases) or 2040 (slow); it reaches the 2025 average (USD 2,625) only in the fast case, around 2040.
about USD 1,870 per t of protein, 2.1 times soybean-meal protein
Mức giá sàn của đạm nấm làm thức ăn chăn nuôi từ glucose sắn
2026 input pricesTính toán của nhóm nghiên cứu
Bối cảnh và nguồn

Even with free capital, glucose and urea set this floor, so learning alone cannot close the gap to soybean-meal protein (USD 880 per t). Our calculation (working-papers/wave3/econ_policy/ecf_calc.py) on the chapter 9 cost stack. 82,96,97,98,83,99,100

Frontier technology →

V.3.3 Capital-charge sensitivity

CaseChangeResult with no learning, USD per t of proteinComparable learning result
Low-cost endCapital charge 12% cut to 9% a year3,613 (from 4,049)Central case in 2030 (3,557, two doublings); the slow case does not reach it by 2050 (3,640)
High-cost end18% cut to 12%12,027 (from 14,693)Central case in 2030 (12,490)

Our calculation . Cheaper capital does as much as the central case's learning to 2030, with no technology risk, which is why concessional debt and guarantees are first-order levers; capital grants and guarantees also beat tax holidays in the regional evidence 101 .

V.3.4 Precision-fermentation cost evidence

ItemValueSource
Cost targets, food proteinsUSD 10 per kg by 2025, USD 1 per kg by 2035 ("envisaged", not modelled)30 (published target)
Peer-reviewed food-protein cost model, 2024 to 2026None found; a 2026 lactoferrin preprint was withdrawn30
Conventional lactoferrinUSD 750 to 1,500 per kg31
TitreBest published leghemoglobin 10.1 g/L against an "above 50 g/L" benchmark (J. Science)
Continuous processingThree times productivity, half the cost at 3,000 L (company claim)27

Our reading: high-value proteins pay now; functional dairy and egg proteins in premium blends in 2030 to 2035; commodity use only if costs near USD 1 to 2 per kg, which no published data yet support .


V.4 Carbon

V.4.1 Carbon price paths

Full table: carbon_price_paths.csv (19 rows).

Jurisdiction and instrumentYearUSD per t CO2eSource
Vietnam, pilot trading (110 power, steel and cement plants)2025 to 2028Not published102,103
Vietnam, World Bank recommended carbon tax2030; 204029; 90104 (published recommendation)
EU emissions trading202583 to 84105
China national emissions trading20259.85106
Korea emissions trading20256.6 to 7.0107
Japan GX-ETS floor to ceiling (mandatory from April 2026)FY202711.36 to 28.73108 (official target)
Singapore carbon tax (S$45; S$50 to 80)2026; 203034; 38 to 61109 (official target)
World Bank corridors (well below 2 °C; 1.5 °C)203063 to 127; 226 to 385110 (published model)

Vietnam's scheme. Decision 263/QD-TTg (9 February 2026) set pilot quotas above 243 Mt CO2e (2025) and 268 Mt (2026), offsets up to 30% and first surrender by 31 December 2027; full operation starts in 2029 103,88 (official target). No price is published and agriculture and food are outside, so no feed or food plant faces a domestic carbon price before 2029 . Asian prices in 2025 were about one-eighth of the EU's.

V.4.2 Carbon cost per tonne of protein

Carbon cost = emission factor x price. It applies only if a price reaches embodied emissions; none does today. Script: ecf_calc.py, parts B and C; full table carbon_cost_per_protein.csv (14 rows).

Inputt CO2e per t of productUSD per t of protein at USD 25 / 50 / 100Source
Soybean meal, Argentina, no land-use change0.7239 / 78 / 157111,112
Soybean meal, Argentina, with country-level land-use change4.09222 / 445 / 889112
Soy, Brazil exports (average; frontier up to six times)0.69; about 4.138 / 75 / 150; 225 / 450 / 900113
Fishmeal, Peru, delivered to China0.53 to 0.5620 to 22 / 41 to 43 / 82 to 86114
Cassava-based fungal protein, Vietnam, 2023 grid2.06 to 5.26 (3.8 to 11.7 per t of protein)94 to 292 / 188 to 585 / 375 to 1,170Our estimate 47,115
Same, 2050 plan grid1.49 to 3.28 (2.7 to 7.3 per t of protein)68 to 182 / 135 to 365 / 271 to 729Our estimate
Protein from power, electricity only, 2023 / 2050 grid46 / 1.1 to 1.4 per t of proteinat USD 50: 2,300 / 55 to 70Our estimate

Fungal footprint inputs per t of product (our assumptions): 2.0 to 2.2 t of glucose at 0.65 to 1.10 t CO2e per t (Thai cassava starch plus hydrolysis); 0.17 to 0.20 t of urea at 1.0 to 2.5 t CO2e per t; 0.9 to 3.1 MWh of power; husk steam counted as biogenic; biogas captured; 45 to 55% protein.

V.4.3 What a carbon price does and does not change

  • For soy, the accounting method is the price. At USD 50 per t, soybean-meal protein gains USD 75 to 78 per t without land-use change (9% of its price) but USD 445 to 480 with it (about half). For Argentine meal, 69% of Vietnam's imports, the two factors differ five-fold; we give both and do not average them .
  • It barely touches fishmeal: USD 41 to 43 per t of protein at USD 50, 1 to 2% of the price. Scarcity drives the fishmeal gap, not carbon 114 .
  • It can hurt a cassava-based microbial protein, which emits more than fishmeal (0.8 to 0.9 t per t of protein) and soybean meal without land-use change (1.6). Residue carbon, biogas and clean power come first .
  • Protein from power flips from worst to best only on a clean grid, around 2045 to 2050 .
  • Nothing prices embodied feed emissions. The EU border carbon mechanism covers urea and hydrogen, both fermentation inputs, but not food or feed 105 . Buyers' scope 3 targets are the likelier channel, 2030 to 2040 .
  • Credits are not a financing route; green-debt labels are. No approved protein-substitution method was found; the Climate Bonds Initiative launched Alternative Proteins criteria in 2025 116,117 .

V.5 AI and bio-design

V.5.1 Demonstrated and claimed

Full table: ai_biodesign_evidence.csv (21 rows).

ApplicationResultStatusSource
Serum-free medium, 14 components181% more cells at about the same cost; 38% fewer experiments than an efficient design of experimentsDemonstrated, lab118
Cost and growth trade-off23% more growth at 62.5% of the costDemonstrated119
Pichia protein production and cell media3 to 30 times fewer experiments than standard designDemonstrated34
Autonomous enzyme engineeringFeed phytase 26 times more active at neutral pH in 4 weeks, under 500 variantsDemonstrated (abstract)35
Generative designWorking artificial lysozymes; a fluorescent protein at 58% identity to known onesDemonstrated120,36
Counter-evidenceBayesian optimisation only "rivals" expert designPreprint121
Sector reviewNo good estimate of time saved; open data "the binding constraint"Independent (June 2026)38
Media costs of USD 0.07 to 0.20 per litre; "years to weeks"Not published or not quantifiedCompany claims38,122

Reading. Gains are real but narrow: about 1.6 to 30 times fewer experiments for specific problems. None lowers production cost at scale, and none removes Vietnam's bottlenecks: rules, shared pilot plant, feedstock conversion and scale-up capital .

V.5.2 Compute, policy and the missing biofoundry

ItemDetailSource
AI Law 134/2025/QH15In force 1 March 2026; a national computing centre, an AI fund, open data and a sandbox; no biotechnology line in the summary read123,124
AI Strategy, Decision 1671/QD-TTg (28 August 2026)By 2030: about 1,100 EFLOPS (FP8), 500 MW of AI data centres, 10,000 advanced AI experts; AI in breeding, livestock and aquaculture; no fermentation or biofoundry125 (official target)
ComputeFPT AI Factory 38th on the June 2025 TOP500 (46.65 petaflops); Viettel DGX B200 from February 2026 with shared research access126,127
Biotechnology policyDraft 2026 to 2030 strategy names "bioinformatics and AI"; Directive 13/CT-TTg asks MAE for biotechnology clusters by December 2026; neither names fermentation128,129
BiofoundryNone found in Vietnam; no Vietnamese member on the visible Global Biofoundry Alliance list130
NeighboursThailand: synthetic biology strategy and a GMP food pilot plant; Korea: open K-Biofoundry and a synthetic biology law; India: a fermentation biofoundry for "smart proteins"131,132,122,133,27

Reading. Compute is no longer the constraint; wet-lab automation, data and bio-ML people are . Design in Vietnam, build and test in a Korean, Singapore or Chinese biofoundry, is the cheap route to 2030 .


V.6 Approvals and capital

V.6.1 Approvals

Novel-protein approvals counted from edition 1.0's register (Singapore, US, Israel, Australia and New Zealand, China; 2026 to 14 August) 134,4 :

Year20192020202120222023202420252026 (part)
All11134393
Cultivated01013152
Precision fermentation00001020

Not counted: 2025 US letters for beta-lactoglobulin (Vivici; Shanghai Changing Biotechnology), lactoferrin (TurtleTree), ovalbumin (Onego Bio) and whey (Verley), with some dates in conflict; a proposed rule to end self-affirmed GRAS; 2024 US molecular-farming clearances; Korea's cell-cultured food standards (June 2026) 28,29,66,135 . Vietnam has no new-food route and no approvals 69 . Full list: approvals_trend.csv (44 rows).

V.6.2 Capital

MeasureValueSource
Private alternative-protein investment, 2025USD 881 million (plant-based 450, fermentation 357, cultivated 74); down 20%, the first year below USD 1 billion in 7 years; over USD 19.5 billion since 2017136,137
FermentationUSD 632 million (2024) to 357 million (2025); precision share 33% (2023) to 66% (2025)27
CultivatedAbout USD 1 billion (2021) to 73.9 million (2025)58,38
PublicAt least USD 2.5 billion (2021 to 2025) across 33 countries; China nearly USD 1 billion in 2025; US federal USD 115 million (2024) to 11 million (2025); Vietnam absent138

Advocacy data; we found no independent projection to 2050 and give none.

V.6.3 Patents expiring in the mid-2030s

Core families behind heme meat analogues (Impossible Foods, e.g. family 54241231; heme secretion filed September 2014) and animal-free dairy (Perfect Day, family 54105986) were filed in 2013 to 2016, so the earliest members lapse around 2033 to 2036 on a 20-year term (our estimate, not a freedom-to-operate analysis) 139 . Continuations extend some protection. Vietnam's only linked filing is a 2019 US application on yeast biomass 25 ; its route to 2040 is process know-how on local feedstocks and strains 32 .

V.6.4 Distressed equipment

AssetWhat happenedSource
Meati (US mycoprotein)300,000 L of capacity valued at USD 15 to 20 million sold for USD 75,000 in 2026, going to India24
NovoNutrients (US)Closed 2025; assets for sale7
Believer Meats (US)USD 154 million plant shut December 2025; status since unknown58,60
Calysseo (China)20,000 t plant halted 202611

Cheap second-hand tanks cut capital more than any learning curve before 2030, until the cycle turns . Clear customs and tax rules for used fermenters would let a Vietnamese feed venture use this in 2027 to 2030 (Robust moves, RM-15) .


V.7 Research pipeline

V.7.1 Global growth by field

OpenAlex articles and reviews; keyword lower bounds; 2026 to 24 September 32 .

Field2015202020252026 (part)Growth a year, 2020 to 2025
Precision fermentation8918823484%
AI with food or alternative protein048912786%
Plant-based meat (reference)3818190568238%
Mycoprotein102310010134%
Cultivated meat and seafood3513350840931%
Gas or CO2-based microbial protein624625821%
Single-cell protein5210123522118%
Molecular farming of food proteins0032n/a

All OpenAlex articles and reviews grew about 0.9% a year (2015 to 2025). Fields with approvals behind them grow fastest; gas fermentation and molecular farming stay thin.

V.7.2 Vietnam's position

MeasureVietnamComparatorsSource
Core basket per 10,000 national publications, 2015 to 20254.1 (72 works)Thailand 13.4; Singapore 10.3; Philippines 5.6; Malaysia 5.432
Cultivated; precision fermentation; mycoprotein; molecular farming; duckweed protein (2015 to 2025)1; 2; 0; 0; 1Thailand 16; 7; 2; 8; 3932
Gas-fermentation protein, 2016 to 20262 of 494China 105; US 64; Denmark 479
AI with alternative protein, 2016 to 20262 (reviews)US 69; China 54; India 48140
Protein design, 2019 to 202646, from 2 (2020) to 19 (2026, part)Singapore 208; Thailand 130140
Screened genuine supply-side works7 (2015 to 2019), 9 (2020 to 2022), 13 (2023 to 2025), 11 (2026, part)Raw counts overstate about twofold (40 of 91 genuine)32

Intensity. Vietnam's alternative-protein research intensity is about a quarter to a third of Thailand's, depending on the database: 4.1 against 13.4 works per 10,000 in OpenAlex, about a quarter in OpenAIRE 32,141 . The two databases agree, so we give the range.

Who does the work. Before 2025, mostly aquafeed trials with Australian partners; in 2025 to 2026, mostly domestic food technology (IUH, HUIT, HCMUTE, Phenikaa, VAST), about 70% without foreign co-authors 32 . At about 20% a year, output would reach about 100 works a year by 2035, roughly Thailand's 2025 level; a mechanical extrapolation, not a forecast 32 . Institutions and partners: K. Research landscape.


V.8 Windows for Vietnam

From frontier_windows.csv (11 rows). Plays: Plays.

IDRouteWindowCondition that opens itPlaysEvidence
FW-01AI-assisted design of feed enzymes and yeast media2026 to 2030Shared wet-lab and data accessT235,130
FW-02Single-cell feed protein on sugar and side streams, possibly in second-hand tanks2027 to 2030A feed-list entry and one anchor buyerT2, T325,24
FW-03Formulating imported, approved novel food ingredients2028 to 2035A new-food route in the Food Safety LawP189,3
FW-04Contract precision fermentation of high-value proteins2030 to 2035New-food route; open pilot plant; patent expiriesT5, T728,139
FW-05Food mycoprotein2030 to 2035New-food route; food-grade pilot plantT921
FW-06Algal and oilseed omega-3 in aquafeed, as buyer2026 to 2035Fish-oil price; feed specificationsT274,73
FW-07Contained molecular farming2035 to 2045Biosafety route under Decree 43/2026none66,33
FW-08Cellulosic and one-carbon sugar at modest scale2040 to 2050A working Asian straw plant; hydrogen at USD 1.5 to 2 per kgT442,56
FW-09Cultivated seafood cells from Vietnamese species2040 to 2050Cell lines and media costs from abroadT858,32
FW-10Bulk feed protein from renewable power2040 to 2050 (not before about 2040 to 2045)The five conditions in V.2.6none2,3
FW-11Cell-free synthesis for foodNot before 2050A cost fall of several orders of magnitudenone70

When frontier windows could open for Vietnam

Earliest plausible window by route, our estimate; conditions in the tooltip

When frontier windows could open for VietnamGantt chart of 11 routes. AI-assisted enzymes and single-cell feed protein open between 2026 and 2030; contract precision fermentation and food mycoprotein 2030 to 2035; molecular farming from 2035; cellulosic sugar, cultivated seafood cells and bulk protein from power in the 2040s; cell-free synthesis not before 2050.AI bio-designBiomass fermentationFood ingredientsPrecision fermentationOmega-3Molecular farmingCarbon feedstockOther (cultivated cells, gas fermentation, cell-free)202620302035204020452050Earliest plausible window (our estimate)AI-assisted design of feed enzymes andyeast mediaAI bio-design; 2026 to 2030AI-assisted design of feed enzymes and yeast media: 2026 to 2030 Family: AI bio-design Condition to open: Shared wet-lab and data access Status in 2026: Global results in research; Vietnam has compute, no biofoundry Related plays: T2Single-cell feed protein on sugar andside streams (possibly second-handtanks)Biomass fermentation; 2027 to 2030Single-cell feed protein on sugar and side streams (possibly second-hand tanks): 2027 to 2030 Family: Biomass fermentation Condition to open: A feed-list entry and one anchor buyer Status in 2026: Commercial in China; one past Vietnamese project Related plays: T2; T3Formulating imported, approved novelfood ingredientsFood ingredients; 2028 to 2035Formulating imported, approved novel food ingredients: 2028 to 2035 Family: Food ingredients Condition to open: A new-food route in the Food Safety Law Status in 2026: No new-food route in Vietnam Related plays: P1Contract precision fermentation ofhigh-value proteinsPrecision fermentation; 2030 to 2035Contract precision fermentation of high-value proteins: 2030 to 2035 Family: Precision fermentation Condition to open: New-food route; open pilot plant; mid-2030s patent expiries Status in 2026: US clearances 2025; no Vietnamese capacity Related plays: T5; T7Food mycoproteinBiomass fermentation; 2030 to 2035Food mycoprotein: 2030 to 2035 Family: Biomass fermentation Condition to open: New-food route; food-grade pilot plant Status in 2026: Approved in China 2025; none in Vietnam Related plays: T9Algal and oilseed omega-3 in aquafeed(as buyer)Omega-3; 2026 to 2035Algal and oilseed omega-3 in aquafeed (as buyer): 2026 to 2035 Family: Omega-3 Condition to open: Fish-oil price; feed specifications Status in 2026: Commercial abroad Related plays: T2Contained molecular farmingMolecular farming; 2035 to 2045Contained molecular farming: 2035 to 2045 Family: Molecular farming Condition to open: Biosafety route under Decree 43/2026 Status in 2026: US clearances; no food reviewCellulosic and one-carbon sugar atmodest scaleCarbon feedstock; 2040 to 2050Cellulosic and one-carbon sugar at modest scale: 2040 to 2050 Family: Carbon feedstock Condition to open: A working Asian straw plant; hydrogen at USD 1.5 to 2 per kg Status in 2026: Western plants shut; Panipat at 62% Related plays: T4Cultivated seafood cells fromVietnamese speciesCultivated cells; 2040 to 2050Cultivated seafood cells from Vietnamese species: 2040 to 2050 Family: Cultivated cells Condition to open: Cell lines and media costs from abroad Status in 2026: First livestock stem-cell work in Vietnam Related plays: T8Bulk feed protein from renewable powerGas fermentation; 2040 to 2050Bulk feed protein from renewable power: 2040 to 2050 Family: Gas fermentation Condition to open: Five conditions: hydrogen, power, capital, fishmeal price, feed-list entry Status in 2026: Largest plant 160 to 230 t a year (Finland) Related plays: noneCell-free synthesis for foodCell-free; not before 2050Cell-free synthesis for food: not before 2050 Family: Cell-free Condition to open: Cost fall of several orders of magnitude Status in 2026: A design tool Related plays: nonenot before 2050

Windows are estimates with conditions, not forecasts.

Nguồn: 2,28,139,24,42,73

Xem số liệuẨn số liệu
When frontier windows could open for Vietnam
RouteFamilyWindow startWindow endStatus in 2026Condition to openRelated plays
AI-assisted design of feed enzymes and yeast mediaAI bio-design20262030Global results in research; Vietnam has compute, no biofoundryShared wet-lab and data accessT2
Single-cell feed protein on sugar and side streams (possibly second-hand tanks)Biomass fermentation20272030Commercial in China; one past Vietnamese projectA feed-list entry and one anchor buyerT2; T3
Formulating imported, approved novel food ingredientsFood ingredients20282035No new-food route in VietnamA new-food route in the Food Safety LawP1
Contract precision fermentation of high-value proteinsPrecision fermentation20302035US clearances 2025; no Vietnamese capacityNew-food route; open pilot plant; mid-2030s patent expiriesT5; T7
Food mycoproteinBiomass fermentation20302035Approved in China 2025; none in VietnamNew-food route; food-grade pilot plantT9
Algal and oilseed omega-3 in aquafeed (as buyer)Omega-320262035Commercial abroadFish-oil price; feed specificationsT2
Contained molecular farmingMolecular farming20352045US clearances; no food reviewBiosafety route under Decree 43/2026
Cellulosic and one-carbon sugar at modest scaleCarbon feedstock20402050Western plants shut; Panipat at 62%A working Asian straw plant; hydrogen at USD 1.5 to 2 per kgT4
Cultivated seafood cells from Vietnamese speciesCultivated cells20402050First livestock stem-cell work in VietnamCell lines and media costs from abroadT8
Bulk feed protein from renewable powerGas fermentation20402050Largest plant 160 to 230 t a year (Finland)Five conditions: hydrogen, power, capital, fishmeal price, feed-list entrynone
Cell-free synthesis for foodCell-free20502050A design toolCost fall of several orders of magnitudenone

Readings :

  • The windows open in sequence: feed ingredients and design work to 2030, food ingredients and contract fermentation in 2030 to 2035, new carbon and seafood cells in the 2040s, bulk protein from power last.
  • Rules open more windows than technology does. FW-02 to FW-05 all wait on a feed-list entry or a new-food route, both decided in Vietnam in 2026 to 2030.
  • The late windows depend on inputs Vietnam can prepare now: residue carbon, clean power at named sites, cheap capital and process skills (Robust moves).

V.9 Gaps and open questions

For Q. Open questions; source conflicts are in R. Disagreements.

#GapCheapest way to close it
1Vietnamese grid cells in the Fasihi et al. global model, to replace our indicative power-to-protein costDownload the model's source data and extract Vietnam
2CO2 volumes and purity at fertiliser plants, refineries, Formosa Ha Tinh and cement plantsCompany sustainability reports; MAE's facility emissions inventory
3Industrial pipeline gas price, for methane proteinA 2026 quote from PV GAS or Gas South
4Status of Vietnamese green hydrogen projects (the IEA lists a 240 MW electrolyser at investment decision; press shows the first plant stalled)IEA hydrogen projects database; MOIT; provincial portals
5Feed-list status of bacterial biomass, CAP and methanotroph mealOne call to MAE's livestock and fisheries departments
6Operating status of Thai Duong Feed's yeast-protein lineMAE feed lists; the company; NASATI report 16724/2019
7Observed first-plant capex for microbial protein, and a global capacity baseline to anchor the doublings in V.3.2Solar Foods, Unibio and Chinese exchange filings; GFI capacity data
8Vietnamese life-cycle data for cassava starch, glucose and fermentationData from a starch plant with biogas; the 2015 Tran et al. paper in full
9Vietnam's carbon price and post-2028 scopeHNX notices; MAE climate change department
10Peer-reviewed titres and cost models for precision-fermented dairy and egg proteinsTargeted journal search
11Biofoundry access terms for Vietnamese teams; the AI Law's decrees on computing-centre accessQuotes from K-Biofoundry and A*STAR; ask MOST
12Tropical cooling penalty for hydrogen and methanol routes (chillers are 8% of power at 30 °C in the model)Model inputs with Vietnamese wet-bulb data

Data files

  • frontier_gas_tech.csv (10 rows): gas and electro-fermentation routes, costs and Vietnam conditions.
  • vn_energy_inputs_2050.csv (50 rows): power, hydrogen and grid inputs to 2050, with our derived needs and costs.
  • co2_point_sources_vn.csv (18 rows): CO2 point sources by site.
  • frontier_bio_tech.csv (14 rows): bio-design, precision fermentation, cultivated, molecular farming, cell-free and biomass routes.
  • ai_biodesign_evidence.csv (21 rows): AI and automation results, demonstrated or claimed.
  • approvals_trend.csv (44 rows): approval and policy items (2024 to 2026) and yearly approval counts.
  • learning_rates.csv (21 rows): learning rates and our fungal-protein cases.
  • carbon_price_paths.csv (19 rows): carbon prices and paths.
  • carbon_cost_per_protein.csv (14 rows): emission factors and carbon cost per t of protein.
  • feedstock_futures.csv (17 rows): residue, side-stream and one-carbon sources to 2050.
  • biblio_trends_frontier.csv (325 rows): OpenAlex counts by topic, country and year, with queries.
  • vn_research_profile.csv (53 rows): Vietnam's research counts, institutions and partners.
  • frontier_windows.csv (11 rows): the windows table in V.8.

Related: Frontier technology, Economics, Technology fit, Protein balance 2050, Robust moves, Costs and benchmarks, J. Science, K. Research landscape, M. Capital, Z. Aquafeed and feedstocks 2050, X. Drivers and signals, U. Futures method

Nguồn được trích dẫn trong trang

Toàn bộ nguồn (Phụ lục T)

  1. FM-01 World Bank. Commodity Price Data (The Pink Sheet). 2 Sep 2026
  2. FTG-01 Fasihi, M., Jouzi, F., Tervasmaki, P., et al.. Global potential of sustainable single-cell protein based on variable renewable electricity. 2025
  3. FTG-03 Investing.com. Solar Foods H1 2026 slides: US launch milestone amid EUR 6.8M loss. August 2026
  4. RGN-04 Singapore Food Agency. SFA list of approved novel foods. 14 Aug 2026
  5. FTG-04 AgFunderNews. Solar Foods wins $89.2m backing for 'protein from air' factory, but final investment decision still pending. 18 Jun 2026
  6. FTG-05 vegconomist. Solar Foods Passes EUR 100M Funding Mark as Factory 02 Enters Final Design. 14 Aug 2026
  7. FTG-10 AgFunderNews. Gas fermentation startup Novonutrients calls it quits, seeks buyer for assets. 18 Jul 2025
  8. FTG-11 AgFunderNews. Arkeon CEO delivers postmortem on 'protein from air' startup: 'We just simply ran out of time'. 26 Jun 2025
  9. FTG-14 OpenAlex query
  10. FTG-35 Nguyen Thi Hieu Thu, Dinh Thuy Hang. Isolation of a methane-oxydizing bacterium for the study on single cell protein production from methane. 2016
  11. FTG-06 Feed Business Middle East and Africa. Calysta appoints new CEO as FeedKind producer seeks funding to scale single-cell protein production. 29 Jul 2026
  12. FTG-22 The Paper (澎湃新闻). 工业尾气如何变身饲料蛋白?. Mar 2022
  13. FTG-08 Sina Finance. 新股前瞻丨毛利率低至-9.2%,首钢朗泽踩中风口盈利难. 5 Jan 2025
  14. FTG-09 Huanbohai News (Tangshan). 河北首朗新能源科技有限公司:'吃'进工业尾气 产出饲料蛋白和乙醇. 16 Sep 2025
  15. FTG-07 AgFunderNews. Unibio plans world's largest single-cell protein plant in Saudi Arabia as food security moves up agenda. 16 Mar 2026
  16. FTG-25 Cartin-Caballero, C., Collet, C., Gapes, D.J., et al.. Simultaneous co-cultivation of the thermoacidophilic methanotroph, Methylacidiphilum sp. RTK17.1, and the microalga, Galdieria sp. RTK37.1, for single cell protein production. 2025
  17. FTG-31 Dân trí. Giá trần điện khí LNG tăng lên hơn 3.410 đồng/kWh. 27 Jul 2026
  18. FTG-26 Kuźniar, A., Furtak, K., Włodarczyk, K., et al.. Methanotrophic Bacterial Biomass as Potential Mineral Feed Ingredients for Animals. 2019
  19. FTG-20 Hoa Phat Group. Sustainability Report 2025. April 2026
  20. HSC-11 Keller and Heckman. Year of the Snake, Year of the Horse: China's Food Law 2025 Year-in-Review and 2026 Outlook. 2026
  21. HSC-14 Green Queen. Angel Yeast Opens Giant Fermented Protein Factory to Boost China's Biomanufacturing Prowess. 5 November 2025
  22. HSC-13 GFI APAC. China repurposing pharma mega-factories to make novel foods, GFI report reveals. 23 July 2026
  23. NGF-17 AgFunderNews. Enifer to make mycoprotein in Brazil from corn ethanol side streams. 3 Jun 2025
  24. FTB-38 Green Queen. Ayana Bio, Zenfold Buy Meati Foods's Fermentation Assets to Scale Plant Cell Culture Platform in India. 18 Sep 2026
  25. HSC-06 US patent application US 2020/0109428 A1. Process for producing high protein biomass from starch-containing cereal materials by yeast strains. 9 April 2020
  26. HSC-07 VISTA portal, National Agency for Science and Technology Information (NASATI). Nghiên cứu sản xuất sinh khối nấm men giàu protein bằng công nghệ lên men các nguyên liệu giàu bột đường. 7 October 2021
  27. FTB-17 Good Food Institute. 2026 State of the Industry report: Fermentation for meat, seafood, eggs, dairy, and ingredients. May 2026
  28. FTB-18 Vireo Advisors. Developments in Precision fermentation, GRAS regulation, and other FDA initiatives. 27 Jan 2025
  29. FTB-19 FoodNavigator. FDA sends 'no questions' letter to Verley for precision fermentation dairy proteins. 10 Oct 2025
  30. FTB-23 Nielsen, M. B., Meyer, A. S., Hansen, K. and Arnau, J.. Enhanced Production of Bovine beta-Lactoglobulin in an Industrial Aspergillus oryzae Host. 2025
  31. FTB-41 Green Queen. TurtleTree Earns First US FDA Approval for Cow-Free Lactoferrin Protein. 2025
  32. HSC-01 OpenAlex works API, queried through the OpenAlex MCP connector (no personal identifiers sent). 2026-09-24
  33. AQF-22 ISAAA Crop Biotech Update. Vietnam updates regulatory framework for agricultural biotechnology. 29 Apr 2026
  34. FTB-04 Narayanan, H. et al.. Accelerating cell culture media development using Bayesian optimization-based iterative experimental design. 2025
  35. FTB-06 Singh, N. et al.. A generalized platform for artificial intelligence-powered autonomous enzyme engineering. 2025
  36. FTB-08 Hayes, T. et al. (EvolutionaryScale). Simulating 500 million years of evolution with a language model. 2025
  37. FTB-05 HamediRad, M. et al.. Towards a fully automated algorithm driven platform for biosystems design. 2019
  38. FTB-01 Moulange, H. and McAuliffe, W.. AI and Cultivated Meat: Near-Term Impacts of AI on the Commercial Viability of Cultivated Meat. 9 June 2026
  39. NGF-33 C&EN. Clariant is latest firm to pull out of cellulosic ethanol. December 2023
  40. NGF-34 Clariant. Clariant shuts its sunliquid bioethanol plant in Romania. 6 Dec 2023
  41. NGF-10 Informist Media. Govt's 2G ethanol plans in limbo as sole IOC Panipat plant lies inactive. 27 Nov 2024
  42. NGF-11 ChiniMandi. India's first 2G ethanol plant at Panipat costs INR 984 crore, government tells Lok Sabha. 2026
  43. NGF-06 Chen, X., Shekiro, J., Pschorn, T. and others. Techno-economic analysis of the deacetylation and disk refining process. 2015
  44. NGF-07 Ou, L., Dou, C., Yu, J.H. and others. Techno-economic analysis of sugar production from lignocellulosic biomass with utilization of hemicellulose and lignin for high-value co-products. 2021
  45. NGF-08 Baral, P., Munagala, M., Shastri, Y., Kumar, V., Agrawal, D.. Cost reduction approaches for fermentable sugar production from sugarcane bagasse and its impact on techno-economics and the environment. 2021
  46. FS-11 Nông nghiệp và Môi trường. Nguồn cung giảm mạnh, giá sắn gần gấp đôi cùng kỳ 2025. 9 April 2026
  47. ECF-25 Lansche J., Awiszus S., Latif S., Müller J.. Potential of biogas production from processing residues to reduce environmental impacts from cassava starch and crisp production: a case study from Malaysia. 2020
  48. NGF-31 Nông nghiệp và Môi trường. Nhiên liệu xanh đưa nông nghiệp vào chuỗi giá trị mới. 30 Jun 2026
  49. NGF-01 Cuong, T.T., Le, H.A., Khai, N.M. and others. Renewable energy from biomass surplus resource: potential of power generation from rice straw in Vietnam. 2021
  50. NGF-04 Kim Anh. Làm sao tiêu thụ hết 14 triệu tấn rơm rạ từ một triệu hecta. 8 Apr 2025
  51. NTS-32 Prime Minister. Quyết định 1490/QĐ-TTg, Đề án phát triển bền vững một triệu héc-ta chuyên canh lúa chất lượng cao và phát thải thấp vùng ĐBSCL đến năm 2030. 27 Nov 2023
  52. NGF-13 Meng, J., Liu, S., Gao, L., Hong, K., Liu, S., Wu, X.. Economical production of Pichia pastoris single cell protein from methanol at industrial pilot scale. 2023
  53. FTG-12 Pan, Z., Guo, Y., Rong, W., et al.. Single-cell protein production from CO2 and electricity with a recirculating anaerobic-aerobic bioprocess. 2025
  54. FTG-13 Cui, H., Liu, W., Ma, C., et al.. Converting CO2 to single-cell protein via an integrated electrocatalytic-biosynthetic system. 2024
  55. FTG-24 Chinese Academy of Sciences (reprinting Science and Technology Daily). 甲醇作'原料' 高效产蛋白. 2 Jan 2024
  56. NGF-12 IRENA and Methanol Institute. Innovation Outlook: Renewable Methanol. 2021
  57. FS-09 Báo Chính phủ. Sản xuất ethanol cho xăng E10: Nhà máy chuyển đổi nguyên liệu, hướng tới 125% công suất. 4 August 2026
  58. FTB-24 Good Food Institute. 2026 State of the Industry report: Cultivated meat, seafood, and ingredients. April 2026
  59. HSC-12 vegconomist. Approvals news category (items dated 28 October 2025, 17 April 2026, 4 June 2026, 4 August 2026). 28 October 2025
  60. FTB-45 FoodNavigator. Where countries stand on cultivated meat regulation in 2026. 18 Feb 2026
  61. FTB-27 Gu, H.-W. et al.. Scaling Cultured Meat: Challenges and Solutions for Affordable Mass Production. 2025
  62. FTB-26 Risner, D. et al.. Environmental Impacts of Cultured Meat: A Cradle-to-Gate Life Cycle Assessment. 2024
  63. HSC-18 Rethink Priorities. Forecasts estimate limited cultured meat production through 2050. 22 March 2022
  64. FTB-44 Hwang, Y.-H., Kim, S.-H., Kim, C.-J. et al.. Survey on the Global Technological Status for Forecasting the Industrialization Timeline of Cultured Meat. 9 Dec 2025
  65. FTB-29 Green Queen. Moolec Gains USDA Approval for Soybeans Containing Pork Proteins. April 2024
  66. FTB-31 USDA APHIS. APHIS Issues Regulatory Status Review Responses: Covercress, GCMBNA, Moolec, and MSU. undated
  67. FTB-28 ISAAA. Milking a Potato and More Wonders of Molecular Farming. 19 Feb 2025
  68. FTB-32 Green Queen. Industry Consolidation: 40+ Major Alternative Protein Companies Have Shut or Been Acquired in Past Year. 4 Sep 2025
  69. FTB-34 Trang thông tin quốc gia về bảo tồn thiên nhiên và đa dạng sinh học (nbca.gov.vn). Hiện trạng cây trồng biến đổi gen và tiềm năng phát triển công nghệ chỉnh sửa gen tại Việt Nam. 12 Aug 2024
  70. FTB-35 Thaore, V., Tsourapas, D., Shah, N. and Kontoravdi, C.. Techno-Economic Assessment of Cell-Free Synthesis of Monoclonal Antibodies Using CHO Cell Extracts. 2020
  71. FTB-36 Lavickova, B. and Maerkl, S. J.. A Simple, Robust, and Low-Cost Method To Produce the PURE Cell-Free System. 2019
  72. FTB-37 Guzman-Chavez, F. et al.. Constructing Cell-Free Expression Systems for Low-Cost Access. 2022
  73. AQF-23 Veramaris. Veramaris opens US$200m facility for EPA and DHA omega-3 algal oil. 10 Jul 2019
  74. AQF-19 Vo, L.L.G., Galkanda-Arachchige, H.S.C., Iassonova, D.R. and Davis, D.A.. Efficacy of modified canola oil to replace fish oil in practical diets of Pacific white shrimp Litopenaeus vannamei. 2021
  75. FTG-19 BloombergNEF. Vietnam: A Techno-Economic Analysis of Power Generation. 23 Oct 2023
  76. FTG-15 Prime Minister. Quyết định 768/QĐ-TTg năm 2025 phê duyệt Điều chỉnh Quy hoạch phát triển điện lực quốc gia thời kỳ 2021-2030, tầm nhìn đến năm 2050. 15 Apr 2025
  77. FTG-16 Prime Minister. Quyết định 165/QĐ-TTg năm 2024 phê duyệt Chiến lược phát triển năng lượng hydrogen của Việt Nam đến năm 2030, tầm nhìn đến năm 2050. 7 Feb 2024
  78. COST-08 Department of Climate Change (MONRE, now MAE). 3 Dec 2024
  79. FTG-18 Bui, V.T., Pham, M.H., Le, P.T.. Techno-economic analysis of a PV-hydrogen system: a case study in Vietnam. 2026
  80. FTG-02 Leger, D., Matassa, S., Noor, E., et al.. Photovoltaic-driven microbial protein production can use land and sunlight more efficiently than conventional crops. 2021
  81. FTG-21 Tạp chí Năng lượng Việt Nam. Thu giữ, lưu trữ, sử dụng CO2 trong hoạt động dầu khí [kỳ cuối]: Giải pháp cho Việt Nam. 13 Mar 2023
  82. COST-01 Ministry of Industry and Trade. Decision 1279/QD-BCT on retail electricity prices. 9 May 2025
  83. COST-43 Risner D., McDonald K.A., Jones C.E. A techno-economic model of mycoprotein production: achieving price parity with beef protein. 2023
  84. ECF-01 Vasilakou K., Nimmegeers P., Thomassen G., Billen P., Van Passel S.. Assessing the future of second-generation bioethanol by 2030: a techno-economic assessment integrating technology learning curves. 2023
  85. ECF-02 Chen X., Khanna M., Yeh S.. Stimulating learning-by-doing in advanced biofuels: effectiveness of alternative policies. 2012
  86. GT-15 World Bank. Commodity Price Data (The Pink Sheet). 2 Sep 2026
  87. GT-14 World Bank. Commodity Markets Outlook, April 2026: price forecasts table. April 2026
  88. REG-59 Government. Nghị định 119/2025/NĐ-CP sửa đổi Nghị định 06/2022/NĐ-CP. 9 Jun 2025
  89. REG-12 GPC Gateway. Vietnam Notifies Draft Law Overhauling National Food Safety Framework. Aug 2026
  90. ECF-03 Hettinga W. et al.. Understanding the reductions in US corn ethanol production costs: an experience curve approach. 2009
  91. ECF-05 Way R., Ives M.C., Mealy P., Farmer J.D.. Empirically grounded technology forecasts and the energy transition. 2022
  92. ECF-09 OpenAlex query by ECF, run 2026-09-24. 2026-09-24
  93. ECF-10 Malhotra A., Schmidt T.S.. Accelerating low-carbon innovation. 2020
  94. ECF-11 Wilson C., Grubler A., Bento N. et al.. Granular technologies to accelerate decarbonization. 2020
  95. ECF-06 Sampat B.N.. Intellectual property rights and pharmaceuticals: the case of antibiotics. 2023
  96. COST-19 Government of Viet Nam. Decree 293/2025/ND-CP on minimum wages. 10 Nov 2025
  97. COST-21 Cushman & Wakefield. Southern Key Economic Zone Industrial MarketBeat Q2 2026. 2026
  98. COST-33 CafeF. Cang thang Trung Dong: Phan bon trong nuoc tang, nong san lai giam sau. 7 Apr 2026
  99. COST-44 Vlaeminck E., Uitterhaegen E., Quataert K., et al. Single-Cell Protein Production from Industrial Off-Gas through Acetate: Techno-Economic Analysis for a Coupled Fermentation Approach. 2023
  100. COST-47 Humbird D. Scale-up economics for cultured meat. 2021
  101. RGN-01 Morton, J., Powell, D. (GFI APAC) and Day, T. (Hawkwood Biotech). Where to Build: site selection and competitiveness in APAC fermentation manufacturing. October 2025
  102. ECF-12 Người Quan Sát. Thị trường tín chỉ carbon lộ diện, doanh nghiệp phát thải lớn đứng trước 'bài toán chi phí mới'. 10 Feb 2026
  103. ECF-13 Ministry of Agriculture and Environment (MAE). News item on carbon market readiness. 10 Apr 2026
  104. CLM-18 World Bank. Key highlights: Country Climate and Development Report for Vietnam. 1 Jul 2022
  105. ECF-15 ICAP. EU Emissions Trading System (EU ETS)
  106. ECF-16 ICAP. China National ETS
  107. ECF-17 ICAP. Korea Emissions Trading System (K-ETS)
  108. ECF-18 ICAP. Japan transitions its GX-ETS to the mandatory phase. 2026
  109. ECF-19 National Climate Change Secretariat, Singapore. Carbon Tax
  110. ECF-20 World Bank. State and Trends of Carbon Pricing 2024. 2024
  111. ECF-21 Dalgaard R. et al.. LCA of soybean meal. 2008
  112. ECF-22 Wilke V., Gickel J., Visscher C.. Monitoring of performance-based environmental impacts of substituting soybean meal with rapeseed meal in the rye-based diet of weaned pigs. 2023
  113. ECF-23 Escobar N., Tizado E.J., zu Ermgassen E.K.H.J., Löfgren P., Börner J., Godar J.. Spatially-explicit footprints of agricultural commodities: mapping carbon emissions embodied in Brazil's soy exports. 2020
  114. ECF-24 Deville A., Vázquez-Rowe I., Avadí A., Miranda F., Kahhat R.F.. Identifying current trends in the environmental impacts linked to fishmeal and fish oil production in Peru. 2025
  115. ECF-26 Tran T. et al.. A comparison of energy use, water use and carbon footprint of cassava starch production in Thailand, Vietnam and Colombia. 2015
  116. ECF-27 WebSearch of carbon-credit methodologies for protein substitution (Verra, Gold Standard, trade press), 2026-09-24; Verra home page. 2026-09-24
  117. ECF-28 Climate Bonds Initiative. Alternative Proteins
  118. FTB-02 Cosenza, Z., Astudillo, R., Frazier, P., Baar, K. and Block, D.. Multi-information source Bayesian optimization of culture media for cellular agriculture. 2022
  119. FTB-03 Cosenza, Z., Block, D., Baar, K. and Chen, X.. Multi-objective Bayesian algorithm automatically discovers low-cost high-growth serum-free media for cellular agriculture application. 2023
  120. FTB-07 Madani, A. et al.. Large language models generate functional protein sequences across diverse families. 2023
  121. FTB-46 Poduschnick, L. et al.. Bayesian optimisation rivals expert-led Design of Experiments in high-dimensional cultivation medium optimisation. 2026
  122. FTB-12 K-Biofoundry (KRIBB, National Bio Foundry Project)
  123. FTB-13 Baker McKenzie. Vietnam: Artificial Intelligence Law - Foundation and Outlook. February 2026
  124. FTB-14 VietNamNet. New AI Law lays foundation for Vietnam to master AI technology. December 2025
  125. FTB-48 LuatVietnam. Quyết định 1671/QĐ-TTg 2026 phê duyệt Chiến lược quốc gia về trí tuệ nhân tạo đến 2030. 28 Aug 2026
  126. FTB-15 VietNamNet. FPT AI factories in Japan and Vietnam enter global top 500 supercomputers. June 2025
  127. FTB-16 Viettel AI. Viettel operates Vietnam's first latest-generation NVIDIA supercomputer. February 2026
  128. FTB-49 Ministry of Science and Technology (mst.gov.vn). Định vị chiến lược công nghệ sinh học quốc gia. 30 Nov 2025
  129. FTB-50 Báo Chính phủ. Phát triển, ứng dụng hiệu quả công nghệ sinh học thành ngành kinh tế - kỹ thuật quan trọng. 21 Apr 2026
  130. FTB-11 Global Biofoundries Alliance. Members
  131. FTB-43 Lim, S., Meerod, W., Hathaichoti, S. and Preedakorn, K.. Thailand's Synthetic Biology Strategy. 2026
  132. FTB-42 BIOTEC (NSTDA, Thailand). The Launch of Bio Base Asia Pilot Plant (BBAPP) Joint Press Conference. 29 Mar 2022
  133. ECF-33 Korea Biomedical Review. Korea passes world's 1st synthetic bio law. 3 Apr 2025
  134. RGN-03 US FDA. Human Food Made with Cultured Animal Cells Inventory
  135. FTB-20 FoodNavigator. South Korea moves closer to cell-cultured food regulations. 15 Jul 2026
  136. ECF-44 Good Food Institute. Alternative protein investment. August 2026
  137. HSC-10 Green Queen. Alternative Protein Funding Down by 20% in 2025, Falling Below $1B for First Time in 7 Years. 17 February 2026
  138. ECF-43 Good Food Institute. 2026 State of Global Policy: public investment in protein diversification. April 2026
  139. FTB-21 Scite patent database queries (Perfect Day family 54105986; Impossible Foods families 54241231, 52666512, 57325176, 51259423). 2026-09-24
  140. FTB-10 OpenAlex queries by FTB (AI and alternative protein by year and country; protein design by country, year and institution; AI and alternative protein with Vietnamese affiliation). 2026-09-24
  141. BIB-01 OpenAIRE AMKE. OpenAIRE Graph API v1, researchProducts endpoint