RESEARCH-STAGE BIOTECHNOLOGY

Restoring a Lost Metabolic Function

Advancing research into the restoration of endogenous vitamin C biosynthesis.

Most mammals synthesize vitamin C endogenously. Humans lost functional GULO activity during evolution and depend on external intake. GULO Therapeutics is investigating restoration of this lost metabolic capability.

THE TERMINAL STEP

L-gulono-1,4-lactone

GULO

ENZYME

L-ascorbate

VITAMIN C

Simplified mammalian biosynthesis. Conceptual illustration, not a depiction of a proprietary approach.

GULO / ENDOGENOUS ASCORBATE BIOSYNTHESIS

A scientific opportunity, grounded in biology

A scientific opportunity, grounded in biology

01 / A LOST BIOLOGICAL CAPABILITY

A pathway retained across much of mammalian biology — but lost in humans.

Vitamin C is an essential biological molecule. Most mammals produce it endogenously. Humans are among a relatively small number of mammals that have lost this metabolic capability.

MOST MAMMALS

A retained pathway

Functional GULO

Endogenous ascorbate biosynthesis

HUMAN BIOLOGY

A missing terminal step

Nonfunctional GULO pseudogene

Vitamin C required from external sources

02 / THE GULO STEP

One enzyme. The terminal step.

L-gulonolactone oxidase catalyzes the terminal enzymatic step in mammalian vitamin C biosynthesis.

Select a stage to explore the biology.

03 / SOURCES OF VITAMIN C

Different sources. Different patterns.

Humans depend on externally supplied vitamin C. Most mammals retain an internal biosynthetic pathway: a different biological source, rather than a different way to take a vitamin.

ORAL / EXOGENOUS

Oral Vitamin C

Conceptual plasma pattern

Intestinal uptake is transporter-mediated and saturable. Larger single doses are absorbed less efficiently; renal reabsorption and urinary excretion also tightly regulate circulating vitamin C.

ENDOGENOUS / INTERNAL

Endogenous Production

Regulated endogenous availability · conceptual

Internal source

Biological regulation

Time →

An intact synthetic pathway makes ascorbate internally available, reducing dependence on intermittent dietary intake and intestinal absorption. Production varies with species and physiological state.

Conceptual educational comparison. No measured values, shared quantitative axis or prediction of human therapeutic benefit. The internal-supply schematic is not a plasma concentration curve.

POPULATION STUDY / NHANES 2017–2018

6.8%

Biochemical deficiency remains measurable.

About 6.8% of U.S. adults aged 20+ met the study’s biochemical deficiency threshold (<11.4 µmol/L). Prevalence was higher among smokers and people with low dietary intake.

Deficiency is not synonymous with suboptimal status, a broader category that depends on the threshold used. This finding does not mean that most people are deficient.

COMPARATIVE BIOLOGY / HISTORICAL ESTIMATE

>13 g/day

A biosynthetic capacity—not a human dose.

Stone’s 1979 article proposed that an unstressed 70-kg goat may produce more than 13 grams of ascorbate per day, potentially more under physiological stress.

A historical published estimate, not a modern human-equivalent requirement, recommended human dose or evidence of therapeutic benefit. Species and physiological context matter.

04 / VITAMIN C BIOLOGY

One molecule. Many biological roles.

Ascorbate contributes to redox biology and enzyme-cofactor functions across tissues. The map highlights established biological roles—not a company indication pipeline or evidence of therapeutic efficacy.

ESSENTIAL MOLECULE

Vitamin C

L-ascorbate

These biological pathways have been investigated in disease-related research. Such literature is separate from company research: no treatment, prevention or clinical benefit is established or implied.

05 / EVOLUTIONARY LOSS

An evolutionary change with lasting metabolic consequences

Humans retain GULO-related genomic sequence as a nonfunctional pseudogene. Capacity for vitamin C biosynthesis has been lost independently in several mammalian lineages, including haplorhine primates such as humans, guinea pigs and related cavies, and some bats.

Functional mammalian GULO

Functional mammalian GULO

Retained in most mammals

Ancestral biology

Ancestral biology

A functional biosynthetic pathway

Loss of functional GULO

Loss of functional GULO

Terminal enzyme activity absent

Human GULO pseudogene

Human GULO pseudogene

Sequence retained; enzyme function lost

Conceptual transition, not a species-wide family tree. Schematic marks represent functional states, not genomic sequence.

06 / THE RESEARCH OPPORTUNITY

Revisiting a capability biology once possessed

GULO Therapeutics is exploring the scientific potential of restoring endogenous vitamin C biosynthesis by re-establishing functional GULO activity.

07 / GULO THERAPEUTICS

Built at the intersection of biotechnology, translational science and pharmaceutical development

GULO Therapeutics is led by biotechnology and pharmaceutical leadership with 25+ years of experience spanning scientific strategy, clinical development, medical affairs and biopharmaceutical innovation.

GULO Therapeutics is a research-stage biotechnology company advancing research into restoration of endogenous vitamin C biosynthesis.

08 / COLLABORATE

Advancing the science together

We welcome conversations with investors, strategic partners and scientific collaborators who share an interest in the biology of GULO.

09 / START A CONVERSATION

Connect with GULO Therapeutics

Please do not submit sensitive medical information or confidential/proprietary scientific information through this general inquiry form.

Grounded in published biology.

Explore the primary studies and reviews behind the public-domain science presented here. Literature references do not establish clinical efficacy for GULO Therapeutics research.