The Enzymatic Foundation

Cannabinoid synthesis in hemp begins with a single precursor compound: cannabigerolic acid, or CBGA. Every cannabinoid the plant produces — THCA, CBDA, CBCA, and CBGA itself — originates from this molecule. The direction CBGA takes through the plant's biosynthetic pathway depends on which enzymes are expressed and in what quantities. THCA synthase converts CBGA toward THCA. CBDA synthase converts it toward CBDA. CBCA synthase converts it toward CBCA. CBGA that is not converted by any of these enzymes remains as CBGA — which decarboxylates to CBG.

The relative activity of these synthase enzymes is primarily genetically determined. A cultivar bred for high CBD expression carries genetic programming that favors CBDA synthase activity. A cultivar bred for CBG expression either carries reduced synthase activity across all three conversion pathways, or is harvested at an early developmental stage before conversion is complete — because CBGA concentrations are highest in young, pre-flowering plant material and decline as the plant matures and converts CBGA forward into other cannabinoids.

Why CBG cultivar development required deliberate breeding

In most mature hemp plants, CBG represents only a fraction of total cannabinoid content — typically under 1% — because most of the plant's CBGA has already been converted to CBDA or THCA by the time flowers mature. Producing commercially useful CBG concentrations required either early-harvest protocols that catch CBGA before conversion, or selective breeding for plants that express reduced synthase activity, preserving more CBGA as CBG. The CBG cultivars used in current research and production are the result of that breeding work, which accelerated significantly after the 2018 Farm Bill opened the door for legal hemp cultivation and investment.

Genetics: What Cultivar Selection Determines

A cultivar — a cultivated variety selected and maintained for consistent expression of specific traits — is the primary unit of genetic decision-making in hemp production. Selecting a cultivar means selecting the genetic program the plant will run: which cannabinoids will be expressed, in what approximate ratios, and within what range of total cannabinoid concentration. Feminized seed stock from a well-characterized cultivar carries that genetic program reliably from plant to plant within a batch, which is the foundation of batch-to-batch consistency in finished preparations.

Chemotype
Dominant Cannabinoid(s)
Primary Genetic Driver
Type I
THC-dominant
High THCA synthase expression. Exceeds 0.3% THC — legally cannabis, not hemp.
Type II
Mixed THC / CBD
Co-expression of THCA and CBDA synthase. Intermediate THC and CBD levels.
Type III
CBD-dominant
High CBDA synthase expression. Low THC. The dominant chemotype in legal hemp cultivation.
Type IV
CBG-dominant
Reduced synthase activity across conversion pathways, preserving CBGA as CBG. Requires deliberate cultivar selection or early harvest timing.
Type V
Cannabinoid-poor
Minimal synthase expression of any type. Historically bred for fiber and seed rather than cannabinoid production.

Environment: What Growing Conditions Modulate

Within the range a cultivar's genetics establish, environmental conditions shape the plant's actual expression at harvest. Genetics determines which cannabinoids are possible and in what approximate proportions; environment influences how fully that potential is realized.

Light intensity and photoperiod influence terpene production alongside cannabinoid development — terpenes are synthesized in the same trichome structures as cannabinoids and respond to similar environmental signals. Mild, controlled stress during the flowering period has been observed to increase resin production in some cultivars, likely as a plant defense response. Water stress at the wrong stage can suppress cannabinoid development. Soil nutrition — particularly the availability of nitrogen, phosphorus, and trace minerals during key developmental phases — supports the enzymatic activity that drives secondary compound synthesis.

These variables interact with each other and with the plant's genetic program in ways that are not fully characterized in the literature. What is clear is that the same cultivar grown under meaningfully different conditions can produce measurably different cannabinoid concentrations at harvest — not different profiles, since genetics determines the profile type, but different total expression within that type.

Terpenes: The Other Dimension of the Plant's Profile

Cannabinoid concentration is one dimension of a hemp plant's chemical profile. Terpenes are the other. These volatile aromatic compounds — myrcene, limonene, pinene, linalool, and dozens of others — are synthesized in the same trichomes as cannabinoids and contribute to the distinctive aromatic character of each cultivar. Terpene expression is both genetically influenced and environmentally sensitive, with temperature and light exposure during the flowering phase having measurable effects on terpene concentration and composition at harvest.

In a full-spectrum preparation, the terpene profile is carried alongside the cannabinoid profile through extraction — which is one reason extraction method and handling temperature matter for what the finished preparation contains. The terpenes that distinguish one cultivar's aromatic character from another's are present in the plant in relatively small concentrations and are the first compounds to degrade under heat, oxidation, or careless handling.