Undergrad Thesis Proposal – BioGrow™ VEGA™

Below is a complete undergraduate thesis proposal framework for developing BioGrow™ VEGA™ as a commercially producible vegetative-growth biofertilizer for Aquilaria spp. I’ve structured it as a product-development + laboratory formulation + nursery efficacy + preliminary commercialization study, which is more defensible academically than claiming commercial readiness from formulation alone.

One important regulatory point: if BioGrow™ VEGA™ is marketed with an organic-input/organic soil-amendment claim, DA-BAFS currently handles registration of organic inputs, while FPA separately regulates fertilizer products within its mandate. BAFS identifies PNS/BAFS 183:2023 for Organic Soil Amendments and Plant Supplements and PNS/BAFS 420:2025 for biostimulants. (BAFS)

UNDERGRADUATE THESIS PROPOSAL

Proposed Title

Development, Formulation, Quality Evaluation, and Commercial Production Feasibility of BioGrow™ VEGA™ as a Vegetative-Growth Biofertilizer for Aquilaria spp.

Alternative scientific title

Development and Evaluation of an Organic Nutrient–Biostimulant Formulation for Vegetative Growth of Aquilaria spp.


ABSTRACT

This study proposes the development and preliminary commercialization assessment of BioGrow™ VEGA™, a liquid organic biofertilizer and plant biostimulant intended to support the vegetative growth and establishment of young Aquilaria spp. trees. The product is designed to provide organic nutrients, selected macronutrients and micronutrients, humic and fulvic substances, amino-acid compounds, seaweed-derived biostimulants, and beneficial rhizosphere microorganisms.

The study will involve five major phases: (1) raw-material characterization, (2) formulation development, (3) physicochemical and microbiological quality evaluation, (4) nursery efficacy testing using Aquilaria seedlings, and (5) preliminary commercial-production and economic feasibility assessment.

Several formulation treatments will be compared with an untreated control and, where feasible, a conventional fertilizer reference. Growth parameters including plant height, stem diameter, number of leaves, number of shoots, canopy development, survival, chlorophyll index, and biomass will be evaluated.

The experiment will use a Completely Randomized Design (CRD) under nursery conditions. Data will be subjected to analysis of variance (ANOVA), with appropriate post-hoc comparisons where significant differences occur.

The study will determine whether the proposed BioGrow™ VEGA™ formulation can be produced consistently, remain physically and microbiologically stable, improve selected vegetative-growth indicators, and demonstrate sufficient preliminary economic potential for further product development.

The study does not claim that BioGrow™ VEGA™ directly induces agarwood formation. Its intended function is vegetative nutrition and plant establishment prior to later plantation-management or agarwood-induction stages.


CHAPTER 1

INTRODUCTION

1.1 Background of the Study

Agarwood is a resinous aromatic material associated with several species of the genus Aquilaria. Cultivation of Aquilariahas become increasingly important because plantation production can provide an alternative to continued dependence on wild-sourced material.

Successful plantation development depends initially on producing healthy, vigorous trees capable of establishing adequate root systems, stems and canopies.

Nutrient management is therefore an important component of early Aquilaria plantation management.

Previous research has demonstrated that fertilization can influence establishment and growth of Aquilaria seedlings. For example, research on Aquilaria crassna reported effects of fertilizer and shade on seedling survival, chlorophyll and growth. (ScienceDirect)

Research on integrated nutrient management in Aquilaria malaccensis seedlings has also reported improved growth characteristics under combinations involving NPK, vermicompost and microbial inoculant inputs. (ResearchGate)

These findings support the development of a specialized nutrient product designed specifically around the early vegetative requirements of Aquilaria.

BioGrow™ VEGA™ is proposed as one component of a broader Aquilaria nutritional management system:

BioGrow™ ROOT → BioGrow™ VEGA™ → BioGrow™ PRIME → BioGrow™ RECOVER

BioGrow™ VEGA™ is intended to occupy the vegetative-growth stage, supporting canopy formation, stem development, leaf production and overall tree vigor.

The commercial-development challenge is to transform this concept into a formulation that is:

  • reproducible;
  • physically stable;
  • nutritionally consistent;
  • microbiologically safe;
  • effective at practical application rates;
  • economically producible; and
  • potentially compliant with Philippine agricultural-input regulations.

1.2 Statement of the Problem

This study seeks to develop and evaluate BioGrow™ VEGA™ as a potential commercial vegetative-growth biofertilizer for Aquilaria spp.

Specifically, it seeks to answer the following questions:

  1. What raw materials are suitable for producing BioGrow™ VEGA™?
  2. What formulation provides an appropriate balance of:
    • organic nutrients;
    • N-P-K;
    • secondary nutrients;
    • micronutrients;
    • humic substances;
    • amino acids;
    • biostimulants; and
    • beneficial microorganisms?
  3. What are the physicochemical properties of the developed formulations?
  4. Are the formulations microbiologically acceptable and sufficiently stable?
  5. Does BioGrow™ VEGA™ improve the vegetative growth of Aquilaria seedlings compared with an untreated control?
  6. Which formulation and application rate provide the best growth response?
  7. What is the estimated production cost per liter?
  8. Is preliminary commercial production economically feasible?
  9. What quality-control specifications should be established for future commercial production?

1.3 General Objective

To develop, formulate, evaluate, and assess the preliminary commercial-production feasibility of BioGrow™ VEGA™ as a vegetative-growth biofertilizer for Aquilaria spp.


1.4 Specific Objectives

The study specifically aims to:

  1. Identify and characterize suitable raw materials for BioGrow™ VEGA™.
  2. Develop three experimental formulations.
  3. Determine the physicochemical characteristics of each formulation.
  4. Determine selected nutrient concentrations.
  5. Evaluate microbial viability where microorganisms are included.
  6. Evaluate product stability during storage.
  7. Determine the effect of BioGrow™ VEGA™ on Aquilaria seedling growth.
  8. Determine the optimum experimental application rate.
  9. Compare BioGrow™ VEGA™ with an untreated control.
  10. Calculate production cost per liter.
  11. Estimate packaging and operating costs.
  12. Develop preliminary quality-control specifications.
  13. Develop a proposed small-scale commercial manufacturing process.
  14. Assess the preliminary commercial potential of the product.

1.5 Hypotheses

Null Hypothesis (H₀)

There is no significant difference in the vegetative growth of Aquilaria seedlings treated with different BioGrow™ VEGA™ formulations and application rates compared with the control.

Alternative Hypothesis (H₁)

At least one BioGrow™ VEGA™ formulation or application rate produces a significantly different vegetative-growth response compared with the control.


1.6 Significance of the Study

Aquilaria growers

The study may provide a specialized nutritional product for young plantation trees.

Nursery operators

BioGrow™ VEGA™ may provide an additional management option for producing vigorous nursery and field-ready seedlings.

Agarwood industry

Improved early-stage tree development may contribute to more uniform plantation establishment.

Researchers

The study provides baseline data for subsequent research on Aquilaria nutrition and biofertilizer development.

Student researchers

The project integrates:

  • plant science;
  • microbiology;
  • fertilizer technology;
  • product formulation;
  • experimental design;
  • quality control; and
  • agricultural entrepreneurship.

Potential manufacturer

The study provides a preliminary technical framework for moving from laboratory formulation toward pilot-scale production.


1.7 Scope and Delimitations

The study will focus on:

  • BioGrow™ VEGA™ formulation;
  • selected raw materials;
  • laboratory quality testing;
  • nursery-scale Aquilaria evaluation;
  • product stability;
  • preliminary production economics.

The study will not attempt to:

  • demonstrate commercial-scale agarwood production;
  • prove increased agarwood resin yield;
  • establish a complete plantation lifecycle;
  • validate long-term tree performance over several years;
  • establish regulatory registration by itself.

Most importantly:

BioGrow™ VEGA™ will be evaluated as a vegetative-growth product, not as an agarwood-induction agent.


1.8 Conceptual Framework

INPUT

Raw Materials

Organic nutrient sources
Plant/fish hydrolysates
Humic substances
Fulvic substances
Seaweed extract
Mineral nutrients
Micronutrients
Beneficial microorganisms

PROCESS

Raw-material testing

Formulation

Blending

Microbial incorporation

Quality-control testing

Stability testing

Aquilaria nursery trial

Growth measurement

Economic analysis

OUTPUT

Optimized BioGrow™ VEGA™ formulation

Quality-control specifications

Application recommendation

Preliminary production process

Production-cost estimate

Commercial feasibility assessment


CHAPTER 2

REVIEW OF RELATED LITERATURE

2.1 Aquilaria spp.

The genus Aquilaria includes trees associated with agarwood production. Cultivation provides a controlled source of trees for plantation-based production and reduces dependence on wild populations.

Early plantation establishment is particularly important because poor transplanting, inadequate nutrition and environmental stress can negatively affect subsequent tree development.


2.2 Nutritional Requirements of Young Trees

Young trees require adequate macro- and micronutrients for:

  • cell division;
  • leaf development;
  • photosynthesis;
  • root growth;
  • stem formation;
  • enzyme activity; and
  • overall biomass accumulation.

Nitrogen is particularly associated with vegetative growth, while phosphorus contributes to energy metabolism and root development, and potassium supports water regulation and physiological functions.

However, excessive nutrient application may produce undesirable growth responses.

Consequently, fertilizer optimization should consider dose, frequency and plant developmental stage, rather than maximizing nutrient concentration.


2.3 Organic Fertilizers

Organic fertilizers may supply nutrients while contributing organic matter and carbon to the growing medium.

Potential raw materials include:

  • plant-derived materials;
  • compost extracts;
  • fish hydrolysates;
  • seaweed;
  • molasses;
  • humic substances.

However, raw materials must be characterized because their nutrient content and microbial quality can vary considerably.


2.4 Beneficial Microorganisms

Microbial inoculants may support nutrient cycling and rhizosphere activity.

Candidate microorganisms for research may include selected Bacillus and Trichoderma strains, subject to institutional biosafety procedures and confirmation of strain identity and safety.

The final product should not assume microbial compatibility merely because individual organisms are beneficial.


2.5 Humic and Fulvic Substances

Humic and fulvic substances may influence nutrient availability and soil interactions.

They may therefore complement the nutritional component of BioGrow™ VEGA™.


2.6 Plant Biostimulants

Biostimulants are now formally addressed by Philippine Standard PNS/BAFS 420:2025, which covers microbial and non-microbial biostimulants and recognizes effects such as shoot and root growth, nutrient uptake, nutrient-use efficiency and stress tolerance. (BAFS)

This is particularly relevant to BioGrow™ VEGA™ because its proposed function includes both nutrient supply and physiological growth support.


2.7 Previous Aquilaria Fertilization Research

Studies of Aquilaria seedlings provide a scientific basis for investigating nutrient management.

One study reported improved A. malaccensis seedling growth from integrated nutrient management involving NPK, vermicompost and microbial inoculation. (ResearchGate)

Research on A. crassna has also examined fertilizer effects in combination with shade, demonstrating that establishment conditions influence survival and growth. (ScienceDirect)

These studies support further investigation of a formulated nutrient/biostimulant system specifically designed for Aquilaria.


2.8 Regulatory Context in the Philippines

This project should distinguish research formulation from commercial registration.

DA-BAFS states that organic input products such as organic soil amendments and plant supplements fall within its registration framework. (BAFS)

BAFS also identifies PNS/BAFS 183:2023 as the standard for Organic Soil Amendments and Plant Supplements and PNS/BAFS 291:2019 as the code of practice for production of organic soil amendments. (BAFS)

For organic products, BAFS registration requirements include documentation such as the application form, organic certificate, product label, packaging and relevant manufacturer/distributor information. (BAFS)

Therefore, the thesis will treat regulatory registration as a future commercialization activity, not as something automatically achieved by the research.


CHAPTER 3

MATERIALS AND METHODS

3.1 Research Design

The research will consist of five phases:

Phase I

Raw-material characterization

Phase II

Formulation development

Phase III

Laboratory quality and stability testing

Phase IV

Nursery efficacy trial

Phase V

Commercial-production and economic feasibility assessment


3.2 Research Site

The nursery experiment may be conducted in an appropriate agricultural research facility, university nursery, or controlled plantation nursery within the Philippines.

The exact location should be specified after approval of the research protocol.


3.3 Experimental Materials

Plant material

Healthy, uniform Aquilaria seedlings of approximately similar:

  • age;
  • height;
  • stem diameter;
  • container size; and
  • physiological condition.

Product ingredients

Potential ingredients include:

  • plant-based organic extract;
  • fish/plant hydrolysate;
  • molasses;
  • humic acid;
  • fulvic acid;
  • seaweed extract;
  • amino-acid source;
  • potassium source;
  • phosphorus source;
  • calcium source;
  • magnesium source;
  • micronutrient premix;
  • validated microbial inoculant.

3.4 Proposed Experimental Formulations

Instead of immediately declaring one formulation as final, the thesis should scientifically compare formulations.

TreatmentProduct concept
T0Untreated control
T1VEGA-L — low nutrient formulation
T2VEGA-M — medium/standard formulation
T3VEGA-H — higher nutrient formulation
T4Commercial/reference fertilizer

This provides a useful dose-response structure.


3.5 Proposed Base Formulation

The preliminary development target is:

Ingredient groupTarget
Organic nutrient extract20%
Hydrolysate10%
Molasses5%
Humic fraction3%
Fulvic fraction2%
Seaweed extract2%
Amino-acid fraction2%
Potassium source1.5%
Phosphorus source0.5%
Magnesium source0.5%
Calcium source0.5%
Micronutrient premix0.5%
Microbial concentrate1%
Stabilizer0.5%
Water/carrierBalance

These are research-development targets, not final guaranteed-analysis values.


3.6 Raw-Material Characterization

Each raw material should be analyzed for applicable characteristics.

Organic materials

  • moisture;
  • pH;
  • organic matter;
  • nitrogen;
  • phosphorus;
  • potassium;
  • visible contaminants.

Mineral inputs

  • identity;
  • purity;
  • nutrient concentration;
  • solubility.

Microbial inputs

  • identity;
  • viability;
  • contamination;
  • compatibility.

3.7 Manufacturing Procedure

A proposed laboratory manufacturing sequence is:

Step 1 — Raw-material inspection

Step 2 — Preparation of organic nutrient fraction

Step 3 — Preparation of mineral nutrient solution

Step 4 — Preparation of humic/fulvic fraction

Step 5 — Combination under controlled mixing

Step 6 — pH adjustment

Step 7 — Cooling/stabilization

Step 8 — Addition of temperature-sensitive biological components

Step 9 — Homogenization

Step 10 — Filtration where appropriate

Step 11 — Filling

Step 12 — Batch coding

Step 13 — QC testing


3.8 Experimental Treatment Application

A preliminary nursery application program may be:

TreatmentProposed concentration
T0Water control
T10.5× standard rate
T21.0× standard rate
T31.5× standard rate
T4Reference fertilizer

The final application rate should be established from preliminary phytotoxicity and nutrient-dose testing.


3.9 Experimental Design

Completely Randomized Design (CRD) is appropriate for a relatively uniform nursery environment.

Example:

5 treatments × 10 plants = 50 experimental plants

For stronger statistical power:

5 treatments × 15 plants = 75 experimental plants

Plants should be randomly assigned to treatments.


3.10 Experimental Duration

A practical undergraduate study may run for:

12–16 weeks

with measurements taken at regular intervals.

Suggested schedule:

  • Day 0 — baseline
  • Day 14 — first assessment
  • Day 28 — second assessment
  • Day 42 — third assessment
  • Day 56 — fourth assessment
  • Day 70 — fifth assessment
  • Day 84 — final assessment

3.11 Growth Parameters

A. Plant Height

Measured from the soil surface to the highest growing point.

B. Stem Diameter

Measured at a standardized stem position using a digital caliper.

C. Number of Leaves

Total fully developed leaves per plant.

D. Number of New Shoots

Count newly developed shoots.

E. Canopy Diameter

Measure two perpendicular canopy dimensions:CD=D1+D22

F. Survival Rate

Survival(%)=Number of surviving plantsTotal plants×100

G. Relative Growth

Growth Rate=Final measurementInitial measurementExperimental duration


3.12 Chlorophyll Measurement

If equipment is available, a SPAD meter may be used to determine relative leaf chlorophyll.

Measurements should be taken from standardized mature leaves.


3.13 Biomass Measurement

At the end of the experiment, a subsample may be harvested for:

  • fresh shoot mass;
  • fresh root mass;
  • dry shoot mass;
  • dry root mass;
  • root-to-shoot ratio.

Drying should use a standardized temperature and duration appropriate to the laboratory protocol.


3.14 Product Quality Testing

Each formulation will be tested for:

Physical characteristics

  • appearance;
  • odor;
  • homogeneity;
  • sedimentation;
  • viscosity;
  • specific gravity.

Chemical characteristics

  • pH;
  • total nitrogen;
  • phosphorus;
  • potassium;
  • calcium;
  • magnesium;
  • organic carbon;
  • humic substances.

Microbiological characteristics

Where applicable:

  • viable microbial count;
  • target-organism viability;
  • total bacterial/fungal counts;
  • indicator organisms;
  • relevant pathogens.

3.15 Stability Testing

Samples should be stored under defined conditions and evaluated periodically.

Suggested observations:

0, 30, 60 and 90 days

Parameters:

  • pH;
  • appearance;
  • odor;
  • sedimentation;
  • nutrient concentration;
  • microbial viability where applicable.

A future commercial product should undergo more extensive real-time and accelerated stability studies.


3.16 Statistical Analysis

The principal model will be:Yij=μ+τi+ϵij

Where:

  • Yij = observed response;
  • μ = overall mean;
  • τi = treatment effect;
  • ϵij = experimental error.

ANOVA will be conducted at:α=0.05

If significant treatment differences occur, an appropriate post-hoc comparison such as Tukey’s HSD may be used.

Where assumptions are violated, appropriate transformation or non-parametric analysis should be considered.


3.17 Economic Analysis

The study will calculate:

Cost of raw materials

Craw=Ci

Processing cost

Cprocessing=Labor+Energy+Water+Equipment

Packaging cost

Cpack=Container+Cap+Label+Packaging

Total production cost

Ctotal=Craw+Cprocessing+Cpack+QC+Overhead

Unit cost

Cost/Liter=Total production costLiters produced


3.18 Preliminary Gross-Margin Analysis

If proposed selling price is P:Gross Margin=PCP×100

The study should evaluate several hypothetical price points rather than assuming one selling price.

For example:

ScenarioPurpose
ConservativeLow selling price
BaseExpected market price
PremiumSpecialized Aquilaria product

3.19 Break-Even Analysis

BEPunits=Fixed CostsSelling PriceVariable Cost

This can provide a preliminary estimate of the minimum annual production volume required.


CHAPTER 4

EXPECTED RESULTS AND DISCUSSION

Because this is a proposal, actual results should not be invented.

The study expects to determine:

4.1 Optimal formulation

One formulation is expected to demonstrate the best balance between:

  • growth response;
  • stability;
  • microbial viability;
  • production cost.

4.2 Growth response

The most effective treatment is expected to produce measurable improvements in one or more of:

  • plant height;
  • stem diameter;
  • leaf number;
  • shoot production;
  • canopy diameter;
  • chlorophyll index;
  • biomass.

4.3 Product stability

An acceptable formulation should maintain:

  • stable appearance;
  • acceptable pH;
  • minimal separation;
  • nutrient consistency;
  • acceptable microbial viability where applicable.

4.4 Commercial production

The study should identify:

  • major cost drivers;
  • scalable ingredients;
  • critical processing steps;
  • QC requirements;
  • packaging requirements.

CHAPTER 5

CONCLUSION AND RECOMMENDATIONS

5.1 Proposed Conclusion

The study will determine whether BioGrow™ VEGA™ can be developed into a technically viable vegetative-growth biofertilizer for Aquilaria spp.

The final conclusion will be based on:

  1. formulation quality;
  2. product stability;
  3. plant-growth response;
  4. statistical significance;
  5. production economics; and
  6. practical manufacturability.

5.2 Proposed Recommendations

If the product demonstrates favorable results, the study will recommend:

  1. Optimization of the best-performing formulation.
  2. Expanded nursery trials.
  3. Multi-location trials.
  4. Longer-duration plantation trials.
  5. Formal product stability studies.
  6. Detailed microbial compatibility studies.
  7. Pilot-scale manufacturing.
  8. Regulatory consultation with the appropriate Philippine authorities.
  9. Development of commercial packaging and labeling.
  10. Further economic feasibility analysis.

PROPOSED BIOGROW™ VEGA™ PRODUCT DEVELOPMENT PIPELINE

STAGE 1 — Research

Raw-material screening

STAGE 2 — Formulation

VEGA-L / VEGA-M / VEGA-H

STAGE 3 — Laboratory QC

NPK + micronutrients + pH + microbial quality

STAGE 4 — Nursery Trial

Aquilaria growth evaluation

STAGE 5 — Optimization

Select best formulation

STAGE 6 — Pilot Production

10–100 L batches

STAGE 7 — Expanded Efficacy Trial

Multiple sites / larger sample

STAGE 8 — Regulatory Preparation

Determine appropriate product classification and registration route

STAGE 9 — Commercial Production

BioGrow™ VEGA™


PROPOSED QUALITY-CONTROL SPECIFICATION

ParameterDevelopment target
AppearanceUniform brown liquid
pH5.0–6.5
Specific gravity1.02–1.15
Total N2–3% target
P₂O₅0.5–1.0% target
K₂O1.5–2.5% target
Organic carbon≥5% target
Humic substances≥3% target
Amino acids≥1% target
Microbial viabilityProduct-specific
PathogensWithin applicable limits
Shelf-life target12–24 months, subject to validation

These values should be treated as research targets, not guaranteed commercial specifications.


PROPOSED COMMERCIAL MANUFACTURING MODEL

Small Pilot Plant

Raw-material receiving

QC laboratory

Raw-material preparation

Extraction/fermentation

Nutrient blending

Biostimulant addition

Microbial addition

Homogenization

Final QC

Filling

Labeling

Finished-product quarantine

Release


PROPOSED COMMERCIAL PRODUCT

BioGrow™ VEGA™

Vegetative Growth & Canopy Development Formula

Core value proposition

A specialized nutrition and biostimulant platform designed to help young Aquilaria trees establish strong roots, vigorous shoots, healthy foliage and balanced canopy development.

Product sequence

BioGrow™ ROOT
Root Establishment

BioGrow™ VEGA™
Vegetative Growth

BioGrow™ PRIME
Mature-Tree Nutrition

BioGrow™ RECOVER
Stress Recovery

BarIno™ Sequential Induction Technology™
Agarwood Induction


PROPOSED THESIS TIMELINE

MonthActivity
1Proposal development and literature review
2Raw-material sourcing and characterization
3Preliminary formulation
4Laboratory QC and formulation selection
5Nursery establishment
6–8Main efficacy experiment
9Laboratory analysis
10Economic analysis
11Data analysis and interpretation
12Thesis writing, revision and defense

PROPOSED THESIS OUTPUTS

The completed undergraduate thesis should produce five tangible outputs:

1. BioGrow™ VEGA™ prototype

A reproducible laboratory-scale formulation.

2. Technical Product Datasheet

Including:

  • formulation;
  • nutrient analysis;
  • physical properties;
  • application rate;
  • storage;
  • QC specifications.

3. Efficacy Dataset

Showing the effect of VEGA on Aquilaria growth.

4. Pilot Manufacturing SOP

A documented procedure for producing the formulation.

5. Preliminary Commercial Feasibility Model

Including:

  • raw-material costs;
  • manufacturing cost;
  • packaging;
  • unit economics;
  • break-even analysis;
  • proposed selling-price scenarios.

Important commercialization note

The thesis should not state that the product is already commercially approved. Philippine requirements depend on how the finished product is classified and what claims are placed on its label. DA-BAFS states that organic-input products require registration, and its current framework includes product registration and experimental-use pathways. (BAFS)

If BioGrow™ VEGA™ carries an organic claim, the thesis should specifically assess compliance with the applicable organic-input requirements and permitted-substance list. (BAFS)

Also, FPA’s current registered-product database demonstrates that biofertilizers and related products can have very different guaranteed analyses and microbial specifications, reinforcing the need to establish the final VEGA specification experimentally rather than treating the preliminary formulation above as a finished regulatory formula. (Fertilizer and Pesticide Authority)

Best thesis framing:
“Development → Formulation → Quality Evaluation → Aquilaria Efficacy → Pilot Production → Preliminary Commercial Feasibility.”

That makes the project sufficiently scientific for an undergraduate thesis while also producing a practical prototype that could later be advanced toward pilot-scale BioGrow™ VEGA™ commercial production.