Cold-inducible proteins CIRP and RBM3, a unique couple with activities far beyond the cold

被引:0
作者
Xinzhou Zhu
Christoph Bührer
Sven Wellmann
机构
[1] University Children’s Hospital Basel (UKBB),Department of Neonatology
[2] Charité University Medical Center,undefined
[3] University of Basel,undefined
来源
Cellular and Molecular Life Sciences | 2016年 / 73卷
关键词
Transcription; Translation; hnRNP; MicroRNA; Neuroscience; Apoptosis; Stress granule;
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学科分类号
摘要
Cold-inducible RNA-binding protein (CIRP) and RNA-binding motif protein 3 (RBM3) are two evolutionarily conserved RNA-binding proteins that are transcriptionally upregulated in response to low temperature. Featuring an RNA-recognition motif (RRM) and an arginine–glycine-rich (RGG) domain, these proteins display many similarities and specific disparities in the regulation of numerous molecular and cellular events. The resistance to serum withdrawal, endoplasmic reticulum stress, or other harsh conditions conferred by RBM3 has led to its reputation as a survival gene. Once CIRP protein is released from cells, it appears to bolster inflammation, contributing to poor prognosis in septic patients. A variety of human tumor specimens have been analyzed for CIRP and RBM3 expression. Surprisingly, RBM3 expression was primarily found to be positively associated with the survival of chemotherapy-treated patients, while CIRP expression was inversely linked to patient survival. In this comprehensive review, we summarize the evolutionary conservation of CIRP and RBM3 across species as well as their molecular interactions, cellular functions, and roles in diverse physiological and pathological processes, including circadian rhythm, inflammation, neural plasticity, stem cell properties, and cancer development.
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页码:3839 / 3859
页数:20
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  • [1] Carey HV(2003)Mammalian hibernation: cellular and molecular responses to depressed metabolism and low temperature Physiol Rev 83 1153-1181
  • [2] Andrews MT(2011)Hibernation and gas exchange Compr Physiol 1 397-420
  • [3] Martin SL(2010)Out cold: biochemical regulation of mammalian hibernation—a mini-review Gerontology 56 220-230
  • [4] Milsom WK(2005)Seasonally hibernating phenotype assessed through transcript screening Physiol Genomics 24 13-22
  • [5] Jackson DC(2015)Hibernation-specific alternative splicing of the mRNA encoding cold-inducible RNA-binding protein in the hearts of hamsters Biochem Biophys Res Commun 462 322-325
  • [6] Storey KB(2014)Hypothermia and neonatal encephalopathy Pediatrics 133 1146-1150
  • [7] Williams DR(2012)Neuroprotective mechanisms of hypothermia in brain ischaemia Nat Rev Neurosci 13 267-278
  • [8] Epperson LE(2011)State of the art in therapeutic hypothermia Annu Rev Med 62 79-93
  • [9] Li W(2013)Effects of moderate and deep hypothermia on RNA-binding proteins RBM3 and CIRP expressions in murine hippocampal brain slices Brain Res 1504 74-84
  • [10] Hughes MA(2012)Hypothermia for acute brain injury—mechanisms and practical aspects Nat Rev Neurol 8 214-222