Table of Contents

    Broccoli Microgreens: Glucoraphanin, Myrosinase, and Why Form Matters

    7 min read
    Broccoli Microgreens: Glucoraphanin, Myrosinase, and Why Form Matters

    💡 Key Takeaways

    Sulforaphane is not pre-formed in broccoli microgreens: it is produced when myrosinase comes into contact with glucoraphanin upon damage to the plant tissue. Understanding this mechanism explains why the preparation method radically changes what the body can absorb.

    • 3-day-old broccoli microgreens contain 10 to 100 times more glucoraphanin than mature broccoli.
    • Sulforaphane does not exist pre-formed: it is produced when myrosinase comes into contact with glucoraphanin upon cutting or chewing.
    • Boiling broccoli reduces sulforaphane bioavailability from 37% (raw) to 3.4% (cooked).
    • Myrosinase is inactivated above ~70°C: brief steaming preserves more enzymatic activity than boiling.
    • A glucoraphanin supplement without active myrosinase produces 3–4 times less circulating sulforaphane.

    This article is based on data from human clinical studies, including trials by Vermeulen et al. (2008), Clarke et al. (2011), and Fahey et al. (2015) on sulforaphane bioavailability.

    Table of Contents

    Sulforaphane appears frequently in articles about broccoli and cruciferous vegetables. But there's a question that is almost never answered well: why do sprouts concentrate so much more than the adult plant, and what needs to happen for sulforaphane to form and be absorbed by the body?

    The following explains the complete mechanism: glucoraphanin, myrosinase, conversion, cooking, and bioavailability. With data from studies.

    What is glucoraphanin and why it exists in the plant

    Glucoraphanin is a glucosinolate: a sulfur compound that broccoli accumulates in its cell vacuoles. By itself, it has no biological activity. Its function is defensive: when an insect pierces the plant tissue, glucoraphanin comes into contact with myrosinase—an enzyme stored in different cells—and the reaction produces isothiocyanates, including sulforaphane. These are irritating compounds that deter herbivores.

    Something similar happens in the kitchen. When cutting or chewing, the tissue breaks and the reaction begins. Without that physical damage, there is no sulforaphane.

    Glucoraphanin is present in all cruciferous vegetables—broccoli, kale, collard greens, radish, watercress—but in very different concentrations depending on the species, variety, and stage of development.


    Why sprouts concentrate much more glucoraphanin than mature broccoli

    In 1997, a team from the Johns Hopkins University Brassica chemoprotection laboratory measured the glucoraphanin content in 3-day-old broccoli sprouts compared to mature broccoli. Sprouts contained between 10 and 100 times more glucoraphanin than the adult plant of the same variety (Fahey et al., PNAS 1997, DOI: 10.1073/pnas.94.19.10367).

    A nuance that almost no article mentions: this range comes from cultivars selected in the laboratory, not from sprouts bought in the supermarket. The actual concentration depends on the variety, germination time, growing conditions, and post-harvest storage. That said, broccoli sprouts are still one of the most concentrated sources of glucoraphanin in regular diet.

    The biological explanation is simple: in the first days of germination, glucosinolates have not yet been redistributed to leaves and flowers. They are concentrated in the cotyledons, which are what are consumed.

    Source Approximate Glucoraphanin Reference
    Mature broccoli 0.1–2.2 µmol/g fresh weight Kushad et al., 1999
    Broccoli sprouts (3 days) 10–100× more than mature broccoli (selected cultivars) Fahey et al., PNAS 1997
    Broccoli microgreens (7–14 days) High concentration, variable depending on cultivation Bouranis et al., Foods 2023
    Kale Present, lower than broccoli
    Watercress Present (main isothiocyanate: PEITC, different from sulforaphane)

    → Glucoraphanin variability in adult broccoli: Glucoraphanin in broccoli: variety, cultivation, and actual concentration


    How sulforaphane is formed: glucoraphanin + myrosinase

    Glucoraphanin and myrosinase coexist in the same cell but in separate compartments. When plant tissue is damaged—by cutting, chewing, or crushing—the compartments break, the two compounds come into contact, and myrosinase hydrolyzes glucoraphanin to produce active sulforaphane. The reaction occurs within minutes.

    Myrosinase is thermolabile: it is inactivated above approximately 70°C. Boiling broccoli for several minutes practically destroys all enzymatic activity. What remains on the plate is intact glucoraphanin, with no possibility of plant conversion.

    When myrosinase is not available, partial conversion can occur in the colon, through the gut microbiota. The problem is that efficiency varies greatly among people: some individuals convert more than 40% of ingested glucoraphanin; others, less than 10%.


    Cooking and bioavailability: the data

    Vermeulen et al. (2008) measured the bioavailability of sulforaphane in 8 men who consumed 200 g of raw or cooked broccoli in a randomized crossover trial. With raw broccoli, 37% of glucoraphanin was recovered as sulforaphane metabolites in blood and urine. With cooked broccoli, only 3.4% (DOI: 10.1021/jf801989e). The plasma peak was reached at 6 hours with cooked broccoli versus 1.6 hours with raw.

    Cooking does not destroy already formed sulforaphane—in fact, sulforaphane is more thermostable than myrosinase. What happens is that heat inactivates the enzyme before it can act, leaving glucoraphanin unconverted.

    Preparation Active Myrosinase Bioavailability (sulforaphane) Plasma Peak
    Raw (well-chewed) Yes ~37% ~1.6 h
    Brief steaming (≤5 min) Partial Reduced, higher than boiled
    Boiled (>3–4 min) No (destroyed) ~3.4% (microbiota conversion) ~6 h
    Microwaved (>1 min) No (destroyed) Greatly reduced

    An experimentally supported strategy: cut the broccoli and let it rest for 40 minutes before cooking. Myrosinase acts during this period and converts part of the glucoraphanin before heat inactivates it. Adding ground mustard seeds to cooked broccoli provides exogenous myrosinase that can help convert the glucoraphanin in the already cooked broccoli, although the amount of enzyme varies depending on the type of mustard used.


    Glucoraphanin supplements: the detail that changes everything

    Many "sulforaphane" supplements sell glucoraphanin without myrosinase. The relevant question is how much sulforaphane actually circulates in our body.

    Clarke et al. (2011) compared bioavailability in 12 people who consumed 40 g of fresh sprouts versus the same people taking 6 capsules of a broccoli supplement without myrosinase activity. Fresh sprouts produced significantly higher plasma levels; the peak and urinary excretion were also delayed with the supplement (DOI: 10.1016/j.phrs.2011.07.005).

    Fahey et al. (2015) confirmed that when endogenous myrosinase is active—as in sprouts or seeds consumed directly—sulforaphane is 3 to 4 times more bioavailable than when glucoraphanin is administered without the enzyme (DOI: 10.1371/journal.pone.0140963).

    What this implies: if a supplement does not explicitly state that it contains active myrosinase, most of the conversion depends on the colonic microbiota—variable, slow, and inefficient compared to the plant enzymatic pathway.

    → How food form changes absorption: Nutrient bioavailability: why you absorb 5% of some supplements and almost 100% of others


    How to consume broccoli microgreens or sprouts

    The way with the highest documented bioavailability is to consume them raw and well-chewed. Chewing is the physical damage that activates the reaction.

    • Raw in salads or on any cold dish. The taste is spicy and slightly bitter—similar to radish—but it integrates well when mixed with other ingredients.

    • Blended in a cold smoothie. The blender performs the necessary physical damage. Without adding heat.

    • Alongside cooked broccoli. A small amount of raw sprouts on the dish provides active myrosinase that can help convert the glucoraphanin in already cooked broccoli.

    • Broccoli microgreens. More tender and easier to integrate than 3-day-old sprouts, with a glucoraphanin concentration similar to that of sprouts.

    For those looking for a concentrated and stable source without relying on daily preparation, low-temperature freeze-dried microgreens retain both glucoraphanin and myrosinase in the original plant matrix. Freeze-drying removes water without destructive heat, so the enzymatic conversion capacity remains intact. This is what differentiates SYNERGIC from an industrialized extract: the precursor and the enzyme coexist in their biological context, available to be activated upon contact with saliva and the digestive environment.



    Conclusion

    Microgreens concentrate more glucoraphanin than adult broccoli because in the early stages of germination, glucosinolates have not yet been redistributed throughout the plant. But the amount of glucoraphanin is only one part of the equation. Without active myrosinase—which heat destroys and microbiota only partially and unpredictably replaces—glucoraphanin is not efficiently converted to sulforaphane.

    How the source is prepared or consumed largely determines how much sulforaphane actually circulates. The bioavailability data are clear enough to make it worth considering before choosing how to obtain glucoraphanin: 37% with a source with active myrosinase versus 3.4% boiled, or 3–4 times less with a supplement without the enzyme.

    → Why cruciferous vegetables have their own biochemistry: Why cruciferous vegetables are different from other vegetables

    → What exactly is glucoraphanin: What is glucoraphanin? The precursor to sulforaphane explained
    → Glucoraphanin vs sulforaphane: the differences that matter: Glucoraphanin vs sulforaphane: why they are not the same

    Frequently Asked Questions

    Is sulforaphane already present in broccoli microgreens?

    Not directly. Microgreens contain glucoraphanin, its inactive precursor. Sulforaphane forms when plant tissue is damaged—by cutting, chewing, or crushing—and myrosinase comes into contact with glucoraphanin. Without that physical damage, the reaction does not occur.

    How much sulforaphane do microgreens provide compared to mature broccoli?

    Broccoli microgreens can contain 10 to 100 times more glucoraphanin than mature broccoli, according to data from selected cultivars in the laboratory (Fahey et al., PNAS 1997). Commercial microgreens have variable concentrations depending on the variety and growing conditions.

    Can microgreens be cooked without losing sulforaphane?

    Cooking destroys myrosinase before it can convert glucoraphanin. Boiling reduces sulforaphane bioavailability from ~37% (raw) to ~3.4% (cooked). Brief steaming at moderate temperatures, less than 5 minutes, preserves more enzymatic activity than boiling or microwaving.

    How many broccoli microgreens should be eaten per day?

    There is no established dose in humans. Clinical studies have used quantities between 20 and 68 g of fresh microgreens per day. Consistency matters more than the exact amount.

    What about sulforaphane supplements?

    Many supplements sell glucoraphanin—the precursor—without active myrosinase. Without the enzyme, bioavailability is 3–4 times lower than that of fresh sprouts. When buying a supplement, look for one that explicitly states active myrosinase or a source with an intact enzyme.

    Are broccoli microgreens safe? Can they cause digestive problems?

    In usual quantities (20–60 g/day), no relevant adverse effects have been described in healthy people. Those with untreated hypothyroidism or taking levothyroxine should consult their doctor, as cruciferous vegetables contain compounds that in high quantities can interfere with iodine uptake. The spicy-bitter taste can be intense at first; starting with small quantities makes adaptation easier.

    Do they taste better than regular broccoli?

    They are spicier and have a more intense flavor than mature broccoli—similar to radish or arugula. Mixed with other ingredients, they are easier to integrate than eaten alone.

    References & Sources

    Fahey JW, Zhang Y, Talalay P. Broccoli sprouts: an exceptionally rich source of inducers of enzymes. PNAS. 1997;94(19):10367–72. DOI: 10.1073/pnas.94.19.10367

    Vermeulen M et al. Bioavailability and kinetics of sulforaphane after consumption of cooked versus raw broccoli. J Agric Food Chem. 2008;56(22):10505–9. DOI: 10.1021/jf801989e

    Clarke JD et al. Bioavailability of sulforaphane and erucin in human subjects consuming broccoli sprouts or broccoli supplement. Pharmacol Res. 2011;64(5):456–63. DOI: 10.1016/j.phrs.2011.07.005

    Fahey JW et al. Sulforaphane bioavailability from glucoraphanin-rich broccoli: control by active endogenous myrosinase. PLoS ONE. 2015;10(11):e0140963. DOI: 10.1371/journal.pone.0140963

    Bouranis JA, Beaver LM, Ho E. Sulforaphane bioavailability from fresh broccoli microgreens. Foods. 2023;12(20):3784. PMID 37893677

    Jaad JORIO
    Written by
    Jaad JORIO

    Jaad Jorio is the co-founder of Supersentials. An engineer by training, farmer, entrepreneur, professional boat captain, and musician, he writes about microgreens, plant nutrition, sulforaphane, and lyophilization, with a structured approach: understand before asserting, distinguish proven facts from probabilities, and avoid turning a mechanism into a promise.

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