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Overview

Uniprot IDO00327
Protein NameBasic helix-loop-helix ARNT-like protein 1
Gene NameBMAL1
OrganismHomo sapiens

Kla Sites from experimental identification

Position Flanking peptide
272 FPSTCSKKKADRKSF

Function

Transcriptional activator which forms a core component of the circadian clock. The circadian clock, an internal time-keeping system, regulates various physiological processes through the generation of approximately 24 hour circadian rhythms in gene expression, which are translated into rhythms in metabolism and behavior. It is derived from the Latin roots 'circa' (about) and 'diem' (day) and acts as an important regulator of a wide array of physiological functions including metabolism, sleep, body temperature, blood pressure, endocrine, immune, cardiovascular, and renal function. Consists of two major components: the central clock, residing in the suprachiasmatic nucleus (SCN) of the brain, and the peripheral clocks that are present in nearly every tissue and organ system. Both the central and peripheral clocks can be reset by environmental cues, also known as Zeitgebers (German for 'timegivers'). The predominant Zeitgeber for the central clock is light, which is sensed by retina and signals directly to the SCN. The central clock entrains the peripheral clocks through neuronal and hormonal signals, body temperature and feeding-related cues, aligning all clocks with the external light/dark cycle. Circadian rhythms allow an organism to achieve temporal homeostasis with its environment at the molecular level by regulating gene expression to create a peak of protein expression once every 24 hours to control when a particular physiological process is most active with respect to the solar day. Transcription and translation of core clock components (CLOCK, NPAS2, BMAL1, BMAL2, PER1, PER2, PER3, CRY1 and CRY2) plays a critical role in rhythm generation, whereas delays imposed by post-translational modifications (PTMs) are important for determining the period (tau) of the rhythms (tau refers to the period of a rhythm and is the length, in time, of one complete cycle). A diurnal rhythm is synchronized with the day/night cycle, while the ultradian and infradian rhythms have a period shorter and longer than 24 hours, respectively. Disruptions in the circadian rhythms contribute to the pathology of cardiovascular diseases, cancer, metabolic syndromes and aging. A transcription/translation feedback loop (TTFL) forms the core of the molecular circadian clock mechanism. Transcription factors, CLOCK or NPAS2 and BMAL1 or BMAL2, form the positive limb of the feedback loop, act in the form of a heterodimer and activate the transcription of core clock genes and clock-controlled genes (involved in key metabolic processes), harboring E-box elements (5'-CACGTG-3') within their promoters. The core clock genes: PER1/2/3 and CRY1/2 which are transcriptional repressors form the negative limb of the feedback loop and interact with the CLOCK|NPAS2-BMAL1|BMAL2 heterodimer inhibiting its activity and thereby negatively regulating their own expression. This heterodimer also activates nuclear receptors NR1D1/2 and RORA/B/G, which form a second feedback loop and which activate and repress BMAL1 transcription, respectively. BMAL1 positively regulates myogenesis and negatively regulates adipogenesis via the transcriptional control of the genes of the canonical Wnt signaling pathway. Plays a role in normal pancreatic beta-cell function; regulates glucose-stimulated insulin secretion via the regulation of antioxidant genes NFE2L2/NRF2 and its targets SESN2, PRDX3, CCLC and CCLM. Negatively regulates the mTORC1 signaling pathway; regulates the expression of MTOR and DEPTOR. Controls diurnal oscillations of Ly6C inflammatory monocytes; rhythmic recruitment of the PRC2 complex imparts diurnal variation to chemokine expression that is necessary to sustain Ly6C monocyte rhythms. Regulates the expression of HSD3B2, STAR, PTGS2, CYP11A1, CYP19A1 and LHCGR in the ovary and also the genes involved in hair growth. Plays an important role in adult hippocampal neurogenesis by regulating the timely entry of neural stem/progenitor cells (NSPCs) into the cell cycle and the number of cell divisions that take place prior to cell-cycle exit. Regulates the circadian expression of CIART and KLF11. The CLOCK-BMAL1 heterodimer regulates the circadian expression of SERPINE1/PAI1, VWF, B3, CCRN4L/NOC, NAMPT, DBP, MYOD1, PPARGC1A, PPARGC1B, SIRT1, GYS2, F7, NGFR, GNRHR, BHLHE40/DEC1, ATF4, MTA1, KLF10 and also genes implicated in glucose and lipid metabolism. Promotes rhythmic chromatin opening, regulating the DNA accessibility of other transcription factors. The NPAS2-BMAL1 heterodimer positively regulates the expression of MAOA, F7 and LDHA and modulates the circadian rhythm of daytime contrast sensitivity by regulating the rhythmic expression of adenylate cyclase type 1 (ADCY1) in the retina. The preferred binding motif for the CLOCK-BMAL1 heterodimer is 5'-CACGTGA-3', which contains a flanking adenine nucleotide at the 3-prime end of the canonical 6-nucleotide E-box sequence (PubMed:23229515). CLOCK specifically binds to the half-site 5'-CAC-3', while BMAL1 binds to the half-site 5'-GTGA-3' (PubMed:23229515). The CLOCK-BMAL1 heterodimer also recognizes the non-canonical E-box motifs 5'-AACGTGA-3' and 5'-CATGTGA-3' (PubMed:23229515). Essential for the rhythmic interaction of CLOCK with ASS1 and plays a critical role in positively regulating CLOCK-mediated acetylation of ASS1 (PubMed:28985504). Plays a role in protecting against lethal sepsis by limiting the expression of immune checkpoint protein CD274 in macrophages in a PKM2-dependent manner (By similarity). Regulates the diurnal rhythms of skeletal muscle metabolism via transcriptional activation of genes promoting triglyceride synthesis (DGAT2) and metabolic efficiency (COQ10B) (By similarity)

Protein Sequence

10 MADQRMDISS 20 TISDFMSPGP 30 TDLLSSSLGT 40 SGVDCNRKRK 50 GSSTDYQESM 60 DTDKDDPHGR 70 LEYTEHQGRI 80 KNAREAHSQI 90 EKRRRDKMNS 100 FIDELASLVP 110 TCNAMSRKLD 120 KLTVLRMAVQ 130 HMKTLRGATN 140 PYTEANYKPT 150 FLSDDELKHL 160 ILRAADGFLF 170 VVGCDRGKIL 180 FVSESVFKIL 190 NYSQNDLIGQ 200 SLFDYLHPKD 210 IAKVKEQLSS 220 SDTAPRERLI 230 DAKTGLPVKT 240 DITPGPSRLC 250 SGARRSFFCR 260 MKCNRPSVKV 270 EDKDFPSTCS 280 KKKADRKSFC 290 TIHSTGYLKS 300 WPPTKMGLDE 310 DNEPDNEGCN 320 LSCLVAIGRL 330 HSHVVPQPVN 340 GEIRVKSMEY 350 VSRHAIDGKF 360 VFVDQRATAI 370 LAYLPQELLG 380 TSCYEYFHQD 390 DIGHLAECHR 400 QVLQTREKIT 410 TNCYKFKIKD 420 GSFITLRSRW 430 FSFMNPWTKE 440 VEYIVSTNTV 450 VLANVLEGGD 460 PTFPQLTASP 470 HSMDSMLPSG 480 EGGPKRTHPT 490 VPGIPGGTRA 500 GAGKIGRMIA 510 EEIMEIHRIR 520 GSSPSSCGSS 530 PLNITSTPPP 540 DASSPGGKKI 550 LNGGTPDIPS 560 SGLLSGQAQE 570 NPGYPYSDSS 580 SILGENPHIG 590 IDMIDNDQGS 600 SSPSNDEAAM 610 AVIMSLLEAD 620 AGLGGPVDFS DLPWPL

Gene Ontology

Classification GO ID Description
Cellular Component GO:0034751 aryl hydrocarbon receptor complex
Cellular Component GO:0000785 chromatin
Cellular Component GO:0033391 chromatoid body
Cellular Component GO:1990513 CLOCK-BMAL transcription complex
Cellular Component GO:0005654 nucleoplasm
Cellular Component GO:0005634 nucleus
Cellular Component GO:0016605 PML body
Molecular Function GO:0017162 aryl hydrocarbon receptor binding
Molecular Function GO:0003677 DNA binding
Molecular Function GO:0000981 DNA-binding transcription factor activity, RNA polymerase II-specific
Molecular Function GO:0140297 DNA-binding transcription factor binding
Molecular Function GO:0070888 E-box binding
Molecular Function GO:0051879 Hsp90 protein binding
Molecular Function GO:0046983 protein dimerization activity
Molecular Function GO:0000978 RNA polymerase II cis-regulatory region sequence-specific DNA binding
Molecular Function GO:0043565 sequence-specific DNA binding
Molecular Function GO:1990837 sequence-specific double-stranded DNA binding
Molecular Function GO:0000976 transcription cis-regulatory region binding
Biological Process GO:0032922 circadian regulation of gene expression
Biological Process GO:0007623 circadian rhythm
Biological Process GO:0006351 DNA-templated transcription
Biological Process GO:0120163 negative regulation of cold-induced thermogenesis
Biological Process GO:0045892 negative regulation of DNA-templated transcription
Biological Process GO:0045599 negative regulation of fat cell differentiation
Biological Process GO:2000323 negative regulation of nuclear receptor-mediated glucocorticoid signaling pathway
Biological Process GO:0032007 negative regulation of TOR signaling
Biological Process GO:0090403 oxidative stress-induced premature senescence
Biological Process GO:0090263 positive regulation of canonical Wnt signaling pathway
Biological Process GO:0042753 positive regulation of circadian rhythm
Biological Process GO:0045893 positive regulation of DNA-templated transcription
Biological Process GO:1901985 positive regulation of protein acetylation
Biological Process GO:2001016 positive regulation of skeletal muscle cell differentiation
Biological Process GO:0045944 positive regulation of transcription by RNA polymerase II
Biological Process GO:0043161 proteasome-mediated ubiquitin-dependent protein catabolic process
Biological Process GO:0051726 regulation of cell cycle
Biological Process GO:2000772 regulation of cellular senescence
Biological Process GO:0006355 regulation of DNA-templated transcription
Biological Process GO:0042634 regulation of hair cycle
Biological Process GO:0050796 regulation of insulin secretion
Biological Process GO:0050767 regulation of neurogenesis
Biological Process GO:0006357 regulation of transcription by RNA polymerase II
Biological Process GO:2000074 regulation of type B pancreatic cell development
Biological Process GO:0051775 response to redox state
Biological Process GO:0007283 spermatogenesis

Reference

[1] He C, Zhang J, Bai X, Lu C, Zhang K. Lysine lactylation-based insight to understanding the characterization of cervical cancer.. Biochim Biophys Acta Mol Basis Dis 1870(7):167356. 2024 Oct. PMID: 39025375.