# The Role of Cryptochromes in environmental regulation of growth

> **NIH NIH R35** · COLD SPRING HARBOR LABORATORY · 2021 · $480,000

## Abstract

ABSTRACT
A fundamental question in biology, which remains unanswered, is how the environment of the organism
regulates its growth and development. Unlike animals, plants neither have specific organs that see or hear
various environmental stimuli nor can they move around to avoid adverse conditions. Although lacking a brain,
plants can successfully integrate internal and external cues and make appropriate decisions about growth. In
contrast to animals, growth in plants occurs post-embryonically, to produce new organs and for growth and
modification of existing forms to adapt to the local environment. Light is among the most relevant
environmental signals because light not only drives photosynthesis but also provides critical information about
the local growth environment as well as diurnal and seasonal time. Over the next few years, my laboratory will
address the mechanisms and the nature of inter-organ communication in plants, where in spite of lack of a
nervous system, signaling to distant organs occur when exposed to a sub-optimal light environment. Our long-
term goal is to understand the molecular mechanisms by which a plant perceives and responds to its light
environment. To address our questions, we will use cryptochromes (CRYs), the UV-A/blue light photoreceptor,
as they form the interface between the light environment and the organism. CRYs are present in diverse
organisms including humans, where they regulate circadian rhythms, several physiological processes and
diseases. We will obtain mechanistic insights on CRY regulation of gene expression at a cellular level that
leads to morphological changes at the organismal level. We will also determine how light and the newly
identified molecular factor, that we have identified controls CRY protein quantity and activity. Also, our
research will unravel the novel mechanisms by which CRYs, through its interaction with the RNA-binding
proteins that we have discovered, control RNA metabolism specifically that of methylated RNAs (m6A). m6A is
a RNA modification that controls its fate as a reversible regulatory mark and disruption of RNA methylation
leads to growth defects in plants and is linked to several human diseases. Therefore, uncovering the role of
CRYs in RNA metabolism has the potential to contribute to the emerging field of methylated RNA with clinical
implications. The success of this study will help to significantly improve crop productivity to feed the growing
human population and in the development of optogenetic tools to target neuronal disorders. In humans,
disruption of CRY activity is associated with many human disorders including cancer, inflammation, insomnia
and diabetes. Understanding CRY function can lead to both prevention and treatment of these diseases.
Taken together, our research will have a broad impact on agriculture and in human health and disease.

## Key facts

- **NIH application ID:** 10219812
- **Project number:** 5R35GM125003-05
- **Recipient organization:** COLD SPRING HARBOR LABORATORY
- **Principal Investigator:** Vincent U Pedmale
- **Activity code:** R35 (R01, R21, SBIR, etc.)
- **Funding institute:** NIH
- **Fiscal year:** 2021
- **Award amount:** $480,000
- **Award type:** 5
- **Project period:** 2017-08-04 → 2023-07-31

## Primary source

NIH RePORTER: https://reporter.nih.gov/project-details/10219812

## Citation

> US National Institutes of Health, RePORTER application 10219812, The Role of Cryptochromes in environmental regulation of growth (5R35GM125003-05). Retrieved via AI Analytics 2026-05-22 from https://api.ai-analytics.org/grant/nih/10219812. Licensed CC0.

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