Search Results

Overview

Uniprot IDP0DMV9
Protein NameHeat shock 70 kDa protein 1B
Gene NameHSPA1B
OrganismHomo sapiens

Kla Sites from experimental identification

Position Flanking peptide
108 PKVQVSYKGETKAFY
126 ISSMVLTKMKEIAEA
159 DSQRQATKDAGVIAG
246 NHFVEEFKRKHKKDI
25 VGVFQHGKVEIIAND
257 KKDISQNKRAVRRLR
3 *****MAKAAAIGID
319 STLEPVEKALRDAKL
328 LRDAKLDKAQIHDLV
348 TRIPKVQKLLQDFFN
451 EGERAMTKDNNLLGR
500 KSTGKANKITITNDK
507 KITITNDKGRLSKEE
512 NDKGRLSKEEIERMV
524 RMVQEAEKYKAEDEV
526 VQEAEKYKAEDEVQR
539 QRERVSAKNALESYA
56 RLIGDAAKNQVALNP
597 DEFEHKRKELEQVCN
71 QNTVFDAKRLIGRKF
77 AKRLIGRKFGDPVVQ
88 PVVQSDMKHWPFQVI

Function

Molecular chaperone implicated in a wide variety of cellular processes, including protection of the proteome from stress, folding and transport of newly synthesized polypeptides, activation of proteolysis of misfolded proteins and the formation and dissociation of protein complexes. Plays a pivotal role in the protein quality control system, ensuring the correct folding of proteins, the re-folding of misfolded proteins and controlling the targeting of proteins for subsequent degradation. This is achieved through cycles of ATP binding, ATP hydrolysis and ADP release, mediated by co-chaperones. The co-chaperones have been shown to not only regulate different steps of the ATPase cycle, but they also have an individual specificity such that one co-chaperone may promote folding of a substrate while another may promote degradation. The affinity for polypeptides is regulated by its nucleotide bound state. In the ATP-bound form, it has a low affinity for substrate proteins. However, upon hydrolysis of the ATP to ADP, it undergoes a conformational change that increases its affinity for substrate proteins. It goes through repeated cycles of ATP hydrolysis and nucleotide exchange, which permits cycles of substrate binding and release. The co-chaperones are of three types: J-domain co-chaperones such as HSP40s (stimulate ATPase hydrolysis by HSP70), the nucleotide exchange factors (NEF) such as BAG1/2/3 (facilitate conversion of HSP70 from the ADP-bound to the ATP-bound state thereby promoting substrate release), and the TPR domain chaperones such as HOPX and STUB1 (PubMed:24012426, PubMed:24318877, PubMed:26865365). Maintains protein homeostasis during cellular stress through two opposing mechanisms: protein refolding and degradation. Its acetylation/deacetylation state determines whether it functions in protein refolding or protein degradation by controlling the competitive binding of co-chaperones HOPX and STUB1. During the early stress response, the acetylated form binds to HOPX which assists in chaperone-mediated protein refolding, thereafter, it is deacetylated and binds to ubiquitin ligase STUB1 that promotes ubiquitin-mediated protein degradation (PubMed:27708256). Regulates centrosome integrity during mitosis, and is required for the maintenance of a functional mitotic centrosome that supports the assembly of a bipolar mitotic spindle (PubMed:27137183). Enhances STUB1-mediated SMAD3 ubiquitination and degradation and facilitates STUB1-mediated inhibition of TGF-beta signaling (PubMed:24613385). Essential for STUB1-mediated ubiquitination and degradation of FOXP3 in regulatory T-cells (Treg) during inflammation (PubMed:23973223)

Protein Sequence

10 MAKAAAIGID 20 LGTTYSCVGV 30 FQHGKVEIIA 40 NDQGNRTTPS 50 YVAFTDTERL 60 IGDAAKNQVA 70 LNPQNTVFDA 80 KRLIGRKFGD 90 PVVQSDMKHW 100 PFQVINDGDK 110 PKVQVSYKGE 120 TKAFYPEEIS 130 SMVLTKMKEI 140 AEAYLGYPVT 150 NAVITVPAYF 160 NDSQRQATKD 170 AGVIAGLNVL 180 RIINEPTAAA 190 IAYGLDRTGK 200 GERNVLIFDL 210 GGGTFDVSIL 220 TIDDGIFEVK 230 ATAGDTHLGG 240 EDFDNRLVNH 250 FVEEFKRKHK 260 KDISQNKRAV 270 RRLRTACERA 280 KRTLSSSTQA 290 SLEIDSLFEG 300 IDFYTSITRA 310 RFEELCSDLF 320 RSTLEPVEKA 330 LRDAKLDKAQ 340 IHDLVLVGGS 350 TRIPKVQKLL 360 QDFFNGRDLN 370 KSINPDEAVA 380 YGAAVQAAIL 390 MGDKSENVQD 400 LLLLDVAPLS 410 LGLETAGGVM 420 TALIKRNSTI 430 PTKQTQIFTT 440 YSDNQPGVLI 450 QVYEGERAMT 460 KDNNLLGRFE 470 LSGIPPAPRG 480 VPQIEVTFDI 490 DANGILNVTA 500 TDKSTGKANK 510 ITITNDKGRL 520 SKEEIERMVQ 530 EAEKYKAEDE 540 VQRERVSAKN 550 ALESYAFNMK 560 SAVEDEGLKG 570 KISEADKKKV 580 LDKCQEVISW 590 LDANTLAEKD 600 EFEHKRKELE 610 QVCNPIISGL 620 YQGAGGPGPG 630 GFGAQGPKGG 640 SGSGPTIEEV D

Gene Ontology

Classification GO ID Description
Cellular Component GO:0016235 aggresome
Cellular Component GO:0072562 blood microparticle
Cellular Component GO:0005814 centriole
Cellular Component GO:0005813 centrosome
Cellular Component GO:0005737 cytoplasm
Cellular Component GO:0005829 cytosol
Cellular Component GO:0005783 endoplasmic reticulum
Cellular Component GO:0070062 extracellular exosome
Cellular Component GO:0005576 extracellular region
Cellular Component GO:1904813 ficolin-1-rich granule lumen
Cellular Component GO:0005925 focal adhesion
Cellular Component GO:0016234 inclusion body
Cellular Component GO:0005739 mitochondrion
Cellular Component GO:0016607 nuclear speck
Cellular Component GO:0005654 nucleoplasm
Cellular Component GO:0005634 nucleus
Cellular Component GO:0048471 perinuclear region of cytoplasm
Cellular Component GO:0005886 plasma membrane
Cellular Component GO:0032991 protein-containing complex
Cellular Component GO:1990904 ribonucleoprotein complex
Cellular Component GO:0031982 vesicle
Molecular Function GO:0005524 ATP binding
Molecular Function GO:0016887 ATP hydrolysis activity
Molecular Function GO:0140545 ATP-dependent protein disaggregase activity
Molecular Function GO:0055131 C3HC4-type RING finger domain binding
Molecular Function GO:0019899 enzyme binding
Molecular Function GO:0001664 G protein-coupled receptor binding
Molecular Function GO:0031072 heat shock protein binding
Molecular Function GO:0042826 histone deacetylase binding
Molecular Function GO:0044183 protein folding chaperone
Molecular Function GO:0003723 RNA binding
Molecular Function GO:0005102 signaling receptor binding
Molecular Function GO:0031625 ubiquitin protein ligase binding
Molecular Function GO:0051082 unfolded protein binding
Molecular Function GO:0001618 virus receptor activity
Biological Process GO:0046034 ATP metabolic process
Biological Process GO:0070370 cellular heat acclimation
Biological Process GO:0034605 cellular response to heat
Biological Process GO:0034599 cellular response to oxidative stress
Biological Process GO:0071383 cellular response to steroid hormone stimulus
Biological Process GO:0006402 mRNA catabolic process
Biological Process GO:0043066 negative regulation of apoptotic process
Biological Process GO:0030308 negative regulation of cell growth
Biological Process GO:0008285 negative regulation of cell population proliferation
Biological Process GO:2001240 negative regulation of extrinsic apoptotic signaling pathway in absence of ligand
Biological Process GO:0090084 negative regulation of inclusion body assembly
Biological Process GO:0031397 negative regulation of protein ubiquitination
Biological Process GO:0043123 positive regulation of canonical NF-kappaB signal transduction
Biological Process GO:0045648 positive regulation of erythrocyte differentiation
Biological Process GO:0010628 positive regulation of gene expression
Biological Process GO:0032757 positive regulation of interleukin-8 production
Biological Process GO:0090063 positive regulation of microtubule nucleation
Biological Process GO:0070434 positive regulation of nucleotide-binding oligomerization domain containing 2 signaling pathway
Biological Process GO:0032436 positive regulation of proteasomal ubiquitin-dependent protein catabolic process
Biological Process GO:1903265 positive regulation of tumor necrosis factor-mediated signaling pathway
Biological Process GO:0042026 protein refolding
Biological Process GO:0050821 protein stabilization
Biological Process GO:1901673 regulation of mitotic spindle assembly
Biological Process GO:0031396 regulation of protein ubiquitination

Reference

[1] Yang D, Yin J, Shan L, Yi X, Zhang W et al.. Identification of lysine-lactylated substrates in gastric cancer cells.. iScience 25(7):104630. 2022 Jul 15. PMID: 35800753.

[2] Yang Z, Yan C, Ma J, Peng P, Ren X et al.. Lactylome analysis suggests lactylation-dependent mechanisms of metabolic adaptation in hepatocellular carcinoma.. Nat Metab 5(1):61-79. 2023 Jan. PMID: 36593272.

[3] Hong H, Chen X, Wang H, Gu X, Yuan Y et al.. Global profiling of protein lysine lactylation and potential target modified protein analysis in hepatocellular carcinoma.. Proteomics 23(9):e2200432. 2023 May. PMID: 36625413.

[4] Yang YH, Wang QC, Kong J, Yang JT, Liu JF. Global profiling of lysine lactylation in human lungs.. Proteomics 23(15):e2200437. 2023 Aug. PMID: 37170646.

[5] 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.

[6] Shi CM, Wang QC, Li XL, Yang YH, Tang XY et al.. Global Profiling of Protein Lactylation in Human Hippocampi.. Proteomics Clin Appl 19(2):e202400061. 2025 Mar. PMID: 39610256.

[7] He J, Lai T, Zhou Z, Yang H, Lei Z et al.. Multiomics profiling reveals the involvement of protein lactylation in nonhomologous end joining pathway conferring radioresistance in lung adenocarcinoma cell.. Sci Rep 15(1):24651. 2025 Jul 9. PMID: 40634431.