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Updated: Dec 27, 2025

Real-time Bioluminescence Imaging of Notch Signaling Dynamics during Murine Neurogenesis
Published on: December 12, 2019
HES and HERP families: multiple effectors of the Notch signaling pathway
Tatsuya Iso1, Larry Kedes, Yasuo Hamamori
1Institute for Genetic Medicine, Department of Biochemistry and Molecular Biology, Keck School of Medicine of the University of Southern California, Los Angeles, California 90089, USA.
Abstract:
Notch signaling dictates cell fate and critically influences cell proliferation, differentiation, and apoptosis in metazoans. Multiple factors at each step-ligands, receptors, signal transducers and effectors-play critical roles in executing the pleiotropic effects of Notch signaling. Ligand-binding results in proteolytic cleavage of Notch receptors to release the signal-transducing Notch intracellular domain (NICD). NICD migrates into the nucleus and associates with the nuclear proteins of the RBP-Jkappa family (also known as CSL or CBF1/Su(H)/Lag-1). RBP-Jkappa, when complexed with NICD, acts as a transcriptional activator, and the RBP-Jkappa-NICD complex activates expression of primary target genes of Notch signaling such as the HES and enhancer of split [E(spl)] families. HES/E(spl) is a basic helix-loop-helix (bHLH) type of transcriptional repressor, and suppresses expression of downstream target genes such as tissue-specific transcriptional activators. Thus, HES/E(spl) directly affects cell fate decisions as a primary Notch effector. HES/E(spl) had been the only known effector of Notch signaling until a recent discovery of a related but distinct bHLH protein family, termed HERP (HES-related repressor protein, also called Hey/Hesr/HRT/CHF/gridlock). In this review, we summarize the recent data supporting the idea of HERP being a new Notch effector, and provide an overview of the similarities and differences between HES and HERP in their biochemical properties as well as their tissue distribution. One key observation derived from identification of HERP is that HES and HERP form a heterodimer and cooperate for transcriptional repression. The identification of the HERP family as a Notch effector that cooperates with HES/E(spl) family has opened a new avenue to our understanding of the Notch signaling pathway.
Insights
Notch signaling controls cell fate. A new effector, HERP (HES-related repressor protein), cooperates with HES/E(spl) proteins to regulate gene expression, expanding our understanding of this vital pathway.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Notch signaling is crucial for cell fate determination, proliferation, differentiation, and apoptosis in metazoans.
- Key components include ligands, receptors, signal transducers, and effectors, with NICD (Notch intracellular domain) activating transcription via RBP-Jkappa.
- HES/E(spl) proteins, primary Notch effectors, function as transcriptional repressors regulating downstream genes.
Purpose of the Study:
- To review recent findings on HERP (HES-related repressor protein) as a novel Notch signaling effector.
- To compare and contrast HES and HERP proteins regarding biochemical properties and tissue distribution.
- To elucidate the role of HERP in Notch-mediated transcriptional regulation.
Main Methods:
- Literature review of recent research on Notch signaling effectors.
- Analysis of biochemical properties and tissue expression patterns of HES and HERP proteins.
- Investigation of protein-protein interactions and transcriptional regulatory mechanisms.
Main Results:
- HERP represents a distinct but related bHLH protein family to HES.
- HERP proteins function as transcriptional repressors, similar to HES/E(spl).
- HES and HERP proteins form heterodimers and cooperate in transcriptional repression.
Conclusions:
- The identification of HERP expands the known effectors of Notch signaling.
- HERP's cooperation with HES/E(spl) offers new insights into the complexity of Notch pathway regulation.
- Understanding HERP's role provides a new avenue for studying cell fate decisions and developmental processes.
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