# Biostimulants

Products that act on plant physiology and stress tolerance rather than nutrient supply or pest control — humic/fulvic acids, protein hydrolysates, seaweed extracts and microbial consortia, formally carved out as PFC 6 under the EU's 2019/1009 regulation.

Source: https://en.bioecon.ru/technology/biostimulants/
Updated: 2026-08-18



## Overview and value chain

Markers: [EC: EU Fertilizing Products Regulation (FPR) 2019/1009 | OECD: Agricultural biotechnology, Sustainable land use | Regulator: EPA (USA), EFSA (EU), MARA (China)]

Agricultural biostimulants are a regulatory category distinct from both
fertilizers (direct macro/micronutrient supply) and pesticides (direct
kill of pests and pathogens): substances or microorganisms applied to
plants or soil whose function is to stimulate natural nutrition
processes and physiological stress responses, independent of the
product's own nutrient content. Under the EU's Regulation 2019/1009,
biostimulants form a standalone product function category (PFC 6),
requiring documented field-trial efficacy and CE marking before sale
across the bloc. Confirmed commercial formulations act fast — foliar
amino-acid biostimulants such as Megafol begin reprogramming plant
stress metabolism within 2–4 hours of application — and the global
market is estimated to be approaching $6 billion in 2026 on a
compound annual growth rate industry trackers put in the low
double digits. The synergy across the category comes from four
distinct modes of action converging on the same physiological targets:
root signaling, antioxidant activation, membrane transport and
hormone-pathway priming.

The key directions of the biostimulants sector are:
1. **Microbial inoculants (Microbial Inoculants):** rhizosphere-colonizing
   PGPR bacteria (*Bacillus*, *Pseudomonas*) and fungi (*Trichoderma*,
   mycorrhizal *Glomus*) that trigger induced systemic resistance and
   improved root branching, distinct from bio-fertilizers that supply
   fixed nitrogen directly.
2. **Humic and fulvic acids (Humic & Fulvic Acids):** organic polymers
   extracted from leonardite or peat that chelate micronutrients and
   improve cell-membrane ion transport without contributing NPK.
3. **Protein hydrolysates and peptides (Protein Hydrolysates & Peptides):**
   enzymatically hydrolyzed plant protein yielding free amino acids and
   short signaling peptides (roughly 3–8 residues) that activate
   antioxidant enzyme cascades under heat, drought and salinity stress.
4. **Seaweed extracts (Seaweed Extracts):** *Ascophyllum nodosum* and
   *Ecklonia maxima*-derived extracts carrying natural auxins,
   cytokinins and gibberellins plus polysaccharides (laminarin,
   alginates) that prime cell division and stress-tolerance pathways.

### Sectoral value chain

```
[Biomass sourcing] ──> [Extraction] ──> [Hydrolysis/fractionation] ──> [Formulation]
                                              │
                                    (stress-response signaling)
                                              │
                                              ▼
[Stress-resilient crop] <─── [Field application] <─────┘
```

### Value chain levels

| Level | Description | Key inputs/outputs |
|:---|:---|:---|
| **Sourcing** | Harvesting seaweed, sourcing soy/plant protein meal or leonardite ore. | **In:** brown seaweed, protein meal, weathered lignite. **Out:** standardized dry feedstock. |
| **Extraction** | Alkaline, acid or enzymatic extraction of humic substances and phytohormones. | **In:** feedstock, reagents, stirred-tank reactors. **Out:** crude liquid extracts. |
| **Enzymatic hydrolysis** | Controlled proteolysis of plant protein into free amino acids and peptides. | **In:** protein slurry, food-grade proteases, heat. **Out:** soluble protein hydrolysate. |
| **Microbial fermentation** | Cultivation and induced sporulation of PGPR strains. | **In:** growth media, bacterial strains, fermenters. **Out:** concentrated spore suspension. |
| **Formulation & blending** | Combining peptides, humates and algal extracts with microbial spores; drying. | **In:** liquid concentrates, spore paste, granulators. **Out:** stable liquid or granular product. |
| **Application** | Seed coating, foliar spray or fertigation at defined physiological stages. | **In:** formulated biostimulant, sprayers, seed treaters. **Out:** stress-primed crop with improved nutrient-use efficiency. |

Cross-cutting technologies of the sector:
- **High-throughput plant phenotyping (High-Throughput Plant Phenotyping):** robotic greenhouse
  lines scan candidate formulas with hyperspectral (400–1000 nm) and thermal cameras.
- **Targeted enzymatic hydrolysis (Targeted Enzymatic Hydrolysis):** engineered protease
  combinations cut proteins at defined sites to yield peptides of a set chain length.
- **Nanocomposite carriers (Nanocomposite Carriers):** silica or lignin nanoparticle carriers
  that slow foliar release and resist rain wash-off.

---

## US

The US market is anchored by row-crop foliar and in-furrow use on corn and soybeans, with a
regulator now drawing a clear line between "biostimulant" and "plant regulator."

### EPA plant-regulator guidance, Biostimulant Coalition advocacy, USDA climate-smart grants
- **EPA draft guidance on plant regulators:** the US Environmental Protection Agency has been
  developing guidance that separates "plant regulator" products (which require pesticide-style
  toxicological registration) from biological biostimulants eligible for a lighter-touch review
  path, easing market entry for peptide and microbial formulas.
- **Biostimulant Coalition:** the industry's US trade association lobbies for a federal
  regulatory definition of biostimulants distinct from fertilizers and pesticides, and for
  harmonized state-level labeling standards.
- **Heliae Development (Gilbert, Arizona):** the microalgae route into the category — its
  PhycoTerra® soil microbial food feeds native soil microbes rather than the crop directly,
  with a PhycoTerra® ST seed-treatment line; the company reported the product applied to more
  than 1 million acres of farmland worldwide by World Soil Day 2021 and was named Agri
  Business Review's "Sustainable Microalgae Solutions of the Year" for 2026.
- **USDA climate-smart agriculture grants:** USDA's Climate-Smart Commodities program funds
  growers adopting regenerative practices, with biostimulant adoption promoted as a lever to
  cut synthetic nitrogen and phosphorus use and the associated farm carbon footprint.

---

## CN

China is the world's largest source of leonardite-derived humic acid but has no standalone
biostimulant registration category — most humic and microbial products are sold and
registered as fertilizers under the agriculture ministry's rules, blurring a line the EU and
US draw sharply.

### weathered-coal humic acid production, fertilizer-category registration, growing global engagement
- **Weathered-coal (leonardite) resource base:** Shanxi and Inner Mongolia hold large
  weathered-coal deposits that feed a domestic humic- and fulvic-acid extraction industry
  supplying both the domestic market and exporters.
- **Regulatory overlap with fertilizers:** because China's Ministry of Agriculture and Rural
  Affairs has not carved out a distinct biostimulant product-function category, humic-acid and
  microbial-consortium products marketed for stress tolerance are typically registered and
  sold under the broader bio-fertilizer classification rather than a dedicated biostimulant one.
- **Rising international engagement:** Chinese researchers and manufacturers have stepped up
  participation in global industry venues such as the Biostimulants World Congress, which drew
  over 1,500 attendees at its most recent edition, signaling growing interest in aligning with
  international efficacy-validation standards. The Chinese Academy of Sciences' Institute of
  Soil Science studies humic-acid interactions with the soil microbiome as a research base for
  future formulations.

---

## EU

The EU is the global standard-setter, having created the first supranational biostimulant
certification framework anywhere.

### EBIC industry coordination, FPR 2019/1009 implementation, CE-marking validation
- **European Biostimulants Industry Council (EBIC):** the sector's EU trade association
  coordinates adoption of efficacy standards and their integration into the bloc's Green Deal
  sustainable-agriculture agenda.
- **FPR 2019/1009 implementation:** the Fertilizing Products Regulation created PFC 6 as a
  standalone biostimulant category; manufacturers must demonstrate claimed efficacy through
  independent field trials before a product can carry CE marking and sell across all member
  states.
- **CE-marking validation:** CE certification includes production-line audits against EU
  safety standards, screening out pathogenic contamination (e.g. *Salmonella*, *E. coli*) and
  heavy metals, giving European growers a common baseline of safety and efficacy assurance.

---

## Leading companies and research institutes

Confirmed live 2026 sources point to a value chain still dominated by seaweed-extract and
peptide specialists, several folded into larger crop-protection platforms since 2020.
**Valagro**, now part of Syngenta Group, sells its Megafol foliar biostimulant on the
GEAPOWER platform into abiotic-stress-exposed maize, wheat, soybean and potato programs
across Africa, Latin America and Europe. **Symborg**, headquartered in Murcia, Spain, became
part of Corteva in 2023 and commercializes root-colonizing biological consortia across more
than 50 countries. On the seaweed side, **Acadian Seaplants**' agricultural division, Acadian
Plant Health, struck a 2024 distribution agreement with BASF to widen access to its
Ascophyllum nodosum extracts (branded Stimplex) beyond Europe, while **Afrikelp USA** markets
an Ecklonia maxima extract validated across 170+ field trials in 55+ countries. **Biostadt
India** anchors the South Asian seaweed-and-amino-acid segment with its Biozyme line.
**Heliae Development** (Gilbert, Arizona) adds the microalgae route, feeding soil microbes
with its PhycoTerra® soil microbial food across US row-crop and permanent-crop acres.

| Company / Institute | Country | Key products / platforms | Tech features | Status 2026 |
|:---|:---|:---|:---|:---|
| **Valagro** | 🇮🇹 Italy | *Megafol®* on the GEAPOWER® platform | Amino-acid/vitamin/betaine complex reprograms stress metabolism in 2–4 h | Commercial (part of Syngenta Group) |
| **Symborg** | 🇪🇸 Spain | Microbial biostimulant consortia | Root-colonizing bacterial/fungal strains, 50+ country reach | Commercial (part of Corteva since 2023) |
| **Acadian Seaplants** | 🇨🇦 Canada | *Stimplex®* | Ascophyllum nodosum extract; distributed globally via BASF since 2024 | Commercial |
| **Afrikelp USA** | 🇺🇸 USA | *LG-1, Double Strength, Concentrate* | Ecklonia maxima extract, Cold Micronisation Process, 170+ field trials | Commercial |
| **Biostadt India** | 🇮🇳 India | *Biozyme Crop+, Biozyme Seed Plus* | Seaweed + amino-acid complex via BILT lacto-fermentation | Commercial |
| **Heliae Development** | 🇺🇸 USA | *PhycoTerra®, PhycoTerra® ST* | Microalgae soil microbial food; 1M+ acres applied | Commercial |

---

## Tech stack and innovations

The stack combines automated phenotyping for formula screening with precision biochemical
and physical processing for the finished product.

1. **AI-driven stress-response phenotyping (AI Stress-Response Phenotyping):**
   - robotic greenhouse lines scan test plants daily with hyperspectral (400–1000 nm) and
     thermal cameras, flagging drought or nitrogen-stress signatures up to 5 days before
     visible symptoms.
   - accelerates screening of hundreds of candidate peptide and microbial blends per season.
2. **Enzymatic membrane reactors (Enzymatic Membrane Reactors):**
   - continuous protein hydrolysis coupled to tangential-flow ultrafiltration isolates
     signaling peptides below roughly 3,000 Da in real time.
   - undigested large proteins are returned to the reactor, preventing over-hydrolysis to
     free amino acids and preserving peptide bioactivity.
3. **Fluidized-bed spray granulation (Fluidized-Bed Spray Granulation):**
   - liquid peptide/humate concentrate is sprayed onto carrier particles suspended in a hot
     air stream, co-depositing microbial spores into a single microgranule.
   - yields dust-free 1–2 mm granules with high spore-viability retention through drying.

---

## Value chains and production pipelines

### Industrial pipeline of a peptide-humic-microbial biostimulant (EU FPR 2019/1009 CE-marking)

```
┌───────────────────────────┐      ┌───────────────────────────┐
│ 1. Feedstock intake       │ ───> │ 2. Enzymatic hydrolysis   │
└───────────────────────────┘      └───────────────────────────┘
                                                 │
                                                 ▼
┌───────────────────────────┐      ┌───────────────────────────┐
│ 4. Bacillus fermentation   │ <─── │ 3. Membrane separation    │
└───────────────────────────┘      └───────────────────────────┘
              │
              ▼
┌───────────────────────────┐      ┌───────────────────────────┐
│ 5. Formulation/granulation│ ───> │ 6. QC, packaging, CE mark │
└───────────────────────────┘      └───────────────────────────┘
```

#### Stage 1: Feedstock intake
Soy protein meal is milled to under 200 microns and standardized for moisture, while
seaweed or leonardite feedstock is washed and moisture-normalized before it enters the
process line.

#### Stage 2: Enzymatic hydrolysis
The protein slurry is heated, pH-adjusted and dosed with food-grade endoproteases for
several hours of controlled proteolysis, then heat-deactivated to stop the reaction at
the target peptide-chain-length distribution.

#### Stage 3: Membrane separation and concentration
A decanter centrifuge removes insoluble fiber, then tangential-flow ultrafiltration
isolates peptides below roughly 5 kDa; the clarified permeate is vacuum-concentrated to
target solids while larger undigested protein is recycled to Stage 2.

#### Stage 4: Bacillus fermentation
In parallel, a rhizosphere Bacillus strain is grown in a stirred-tank fermenter on a
corn-molasses medium; reduced aeration late in the run induces sporulation, and the
culture is centrifuged into a concentrated spore paste at a defined CFU/mL titer.

#### Stage 5: Formulation and granulation
The peptide/humate concentrate is blended with potassium humate and the Bacillus spore
paste, then sprayed through nozzles into a fluidized-bed granulator, producing dust-free
1–2 mm microgranules with spores locked into the organo-mineral matrix.

#### Stage 6: QC, packaging and certification
Each batch is tested for moisture content, amino-acid profile, viable spore titer and
bioassay response (seedling root-length gain versus an untreated control) before
packaging and CE-marking under FPR 2019/1009 for EU sale, or the equivalent registration
route in each destination market.

