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.

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.

Related Concept Videos

Circadian Rhythms and Gene Regulation02:19

Circadian Rhythms and Gene Regulation

The biological clock is involved in many aspects of regulating complex physiology in all animals. It was in 1935 when German zoologists, Hans Kalmus and Erwin Bünning, discovered the existence of circadian rhythm in Drosophila melanogaster. However, the internal molecular mechanisms behind the circadian clock remained a mystery until 1984, when Jeffrey C. Hall, Michael Rosbash, and Michael W. Young discovered the expression of the Per gene oscillating over a 24-hour cycle. In subsequent years,...
Circadian Rhythms and Gene Regulation02:19

Circadian Rhythms and Gene Regulation

The biological clock is involved in many aspects of regulating complex physiology in all animals. It was in 1935 when German zoologists, Hans Kalmus and Erwin Bünning, discovered the existence of circadian rhythm in Drosophila melanogaster. However, the internal molecular mechanisms behind the circadian clock remained a mystery until 1984, when Jeffrey C. Hall, Michael Rosbash, and Michael W. Young discovered the expression of the Per gene oscillating over a 24-hour cycle. In subsequent years,...
Biological Clocks and Seasonal Responses02:45

Biological Clocks and Seasonal Responses

The circadian—or biological—clock is an intrinsic, timekeeping, molecular mechanism that allows plants to coordinate physiological activities over 24-hour cycles called circadian rhythms. Photoperiodism is a collective term for the biological responses of plants to variations in the relative lengths of dark and light periods. The period of light-exposure is called the photoperiod.
Regulation of Nuclear Protein Sorting01:45

Regulation of Nuclear Protein Sorting

Nuclear protein sorting regulates nucleus composition and gene expression, crucial for determining the fate of a eukaryotic cell. Hence, the entry and exit of molecules across the nuclear envelope is a tightly controlled process. Nuclear protein sorting can be inhibited by one of the following ways: 1) masking cargo signal sequences, 2) modifying the nuclear receptor's affinity for cargo, 3) controlling the nuclear pore size, 4) retaining the cargo during its transit to the cytosol or the...
Co-activators and Co-repressors02:04

Co-activators and Co-repressors

Gene transcription is regulated by the synergistic action of several proteins that form a complex at a gene regulatory site. This is observed in eukaryotes, where the regulation of gene expression is a complex process. Regulatory proteins in eukaryotes can broadly be classified into two types – regulators that bind directly to specific DNA sequences and co-regulators that associate with regulatory proteins but cannot directly bind to the DNA. These co-regulators are further divided into...
Hedgehog Signaling Pathway02:33

Hedgehog Signaling Pathway

The Hedgehog gene (Hh) was first discovered due to its control of the growth of disorganized, hair-like bristles phenotype in Drosophila, much like hedgehog spines. Hh plays a crucial role in the development of organs and the maintenance of homeostasis in both invertebrates and vertebrates. However, while Drosophila has only one Hh protein, mammals have multiple functional Hedgehog proteins - Sonic (Shh), Desert (Dhh), and Indian Hedgehog (Ihh). All of these homologous proteins have adapted to...