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Updated: May 29, 2026

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Published on: September 9, 2021
JAKs go nuclear: emerging role of nuclear JAK1 and JAK2 in gene expression and cell growth
Fouad A Zouein1, Roy J Duhé, George W Booz
1Department of Pharmacology and Toxicology, School of Medicine, Jackson, MS 39216-4505, USA.
Abstract:
The four Janus kinases (JAKs) comprise a family of intracellular, nonreceptor tyrosine kinases that first gained attention as signaling mediators of the type I and type II cytokine receptors. Subsequently, the JAKs were found to be involved in signaling downstream of the insulin receptor, a number of receptor tyrosine kinases, and certain G-protein coupled receptors. Although a number of cytoplasmic targets for the JAKs have been identified, their predominant action was found to be the phosphorylation and activation of the signal transducers and activators of transcription (STAT) factors. Through the STATs, the JAKs activate gene expression linked to cellular stress, proliferation, and differentiation. The JAKs are especially important in hematopoiesis, inflammation, and immunity, and aberrant JAK activity has been implicated in a number of disorders including rheumatoid arthritis, psoriasis, polycythemia vera, and myeloproliferative diseases. Although once thought to reside strictly in the cytoplasm, recent evidence shows that JAK1 and JAK2 are present in the nucleus of certain cells often under conditions associated with high rates of cell growth. Nuclear JAKs have now been shown to affect gene expression by activating other transcription factors besides the STATs and exerting epigenetic actions, for example, by phosphorylating histone H3. The latter action derepresses global gene expression and has been implicated in leukemogenesis. Nuclear JAKs may have a role as well in stem cell biology. Here we describe recent developments in understanding the noncanonical nuclear actions of JAK1 and JAK2.
Insights
Janus kinases (JAKs) are key signaling proteins. Recent findings reveal JAK1 and JAK2 function within the cell nucleus, impacting gene expression and potentially contributing to diseases like leukemia.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Janus kinases (JAKs) are intracellular tyrosine kinases crucial for cytokine receptor signaling.
- JAKs mediate cellular stress, proliferation, differentiation, hematopoiesis, inflammation, and immunity.
- Aberrant JAK activity is linked to rheumatoid arthritis, psoriasis, and myeloproliferative diseases.
Purpose of the Study:
- To explore the noncanonical nuclear actions of JAK1 and JAK2.
- To understand the role of nuclear JAKs in gene expression and epigenetic regulation.
- To investigate the implications of nuclear JAKs in stem cell biology and leukemogenesis.
Main Methods:
- Review of recent scientific literature on JAK signaling.
- Analysis of studies investigating the localization and function of JAK1 and JAK2 in the nucleus.
- Examination of evidence linking nuclear JAKs to transcription factor activation and histone modification.
Main Results:
- JAK1 and JAK2 have been identified in the nucleus of certain cells, particularly those with high growth rates.
- Nuclear JAKs activate transcription factors beyond STATs and modify histones, such as phosphorylating histone H3.
- Histone H3 phosphorylation by nuclear JAKs leads to global gene expression deregulation, implicated in leukemogenesis.
Conclusions:
- JAK1 and JAK2 possess noncanonical functions within the cell nucleus.
- Nuclear JAK activity influences gene expression through direct transcription factor activation and epigenetic modifications.
- Understanding nuclear JAK actions is vital for comprehending their role in diseases and stem cell biology.
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