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DHHC3-dependent S-Acylation of CRY1 regulates its subcellular localization and repressor function in the circadian
Ji Ye Lim1, Shayahati Bieerkehazhi1, Chorong Han1
1Department of Biochemistry and Molecular Biology, The University of Texas Health Science Center at Houston, 6431 Fannin St., Houston, TX 77030, USA.
Abstract:
The circadian clock is essential for maintaining cellular homeostasis and physiological fitness. At the molecular level, core clock proteins function via transcriptional-translational feedback loops in the cellular oscillator, and are highly regulated by post-translational modifications. Our unbiased screening of core clock proteins revealed that Cryptochrome 1 (CRY1), the central transcriptional repressor in the circadian clock, undergoes a novel post-translational modification known as S-acylation. We show that this reversible lipidation of CRY1 is required for its nuclear import and interaction with key clock components. Further, we mapped four cysteine residues as CRY1 S-acylation sites and identified DHHC3 as the primary protein acyltransferase for CRY1. Importantly, loss of CRY1 S-acylation, either via cysteine mutagenesis or genetic deletion of DHHC3, impaired CRY1 repressor function and consequently cellular circadian rhythms, suggesting that dynamic S-acylation couples cytoplasmic regulation of CRY1 and its transcriptional repressor function in the nucleus. Together, our findings identify S-acylation as a previously unknown post-translational modification of CRY1 critical for circadian clock function and establish DHHC3 as a pivotal circadian regulatory enzyme. Targeting CRY1 S-acylation or its regulatory enzymes may constitute an innovative therapeutic approach against clock-associated diseases.
Insights
The circadian clock protein Cryptochrome 1 (CRY1) is modified by S-acylation, a lipid modification essential for its nuclear function. This process regulates cellular circadian rhythms and may offer therapeutic targets for clock-associated diseases.
Area of Science:
- Molecular Biology
- Chronobiology
- Biochemistry
Background:
- The circadian clock regulates cellular homeostasis via transcriptional-translational feedback loops.
- Core clock proteins are regulated by post-translational modifications.
Purpose of the Study:
- To identify novel post-translational modifications of core clock proteins.
- To investigate the role of S-acylation in the function of Cryptochrome 1 (CRY1).
Main Methods:
- Unbiased screening of core clock proteins.
- Mapping of S-acylation sites on CRY1.
- Identification of DHHC3 as the CRY1 acyltransferase.
- Cysteine mutagenesis and genetic deletion of DHHC3.
Main Results:
- CRY1 undergoes S-acylation, a novel post-translational modification.
- S-acylation is required for CRY1 nuclear import and interaction with clock components.
- Loss of S-acylation impairs CRY1 repressor function and circadian rhythms.
- DHHC3 is the primary acyltransferase for CRY1.
Conclusions:
- S-acylation is a critical modification for CRY1 function in the circadian clock.
- Dynamic S-acylation links cytoplasmic regulation to nuclear repressor activity of CRY1.
- DHHC3 is a key enzyme in circadian regulation.
- Targeting CRY1 S-acylation offers potential therapeutic strategies for circadian rhythm disorders.
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