Search Results

Overview

Uniprot IDP43487
Protein NameRan-specific GTPase-activating protein
Gene NameRANBP1
OrganismHomo sapiens

Kla Sites from experimental identification

Position Flanking peptide
150 LNAENAQKFKTKFEE
152 AENAQKFKTKFEECR
154 NAQKFKTKFEECRKE
183 HAEKVAEKLEALSVK
5 ***MAAAKDTHEDHD

Function

Plays a role in RAN-dependent nucleocytoplasmic transport. Alleviates the TNPO1-dependent inhibition of RAN GTPase activity and mediates the dissociation of RAN from proteins involved in transport into the nucleus (By similarity). Induces a conformation change in the complex formed by XPO1 and RAN that triggers the release of the nuclear export signal of cargo proteins (PubMed:20485264). Promotes the disassembly of the complex formed by RAN and importin beta. Promotes dissociation of RAN from a complex with KPNA2 and CSE1L (By similarity). Required for normal mitotic spindle assembly and normal progress through mitosis via its effect on RAN (PubMed:17671426). Does not increase the RAN GTPase activity by itself, but increases GTP hydrolysis mediated by RANGAP1 (PubMed:7882974). Inhibits RCC1-dependent exchange of RAN-bound GDP by GTP (PubMed:7616957, PubMed:7882974)

Protein Sequence

10 MAAAKDTHED 20 HDTSTENTDE 30 SNHDPQFEPI 40 VSLPEQEIKT 50 LEEDEEELFK 60 MRAKLFRFAS 70 ENDLPEWKER 80 GTGDVKLLKH 90 KEKGAIRLLM 100 RRDKTLKICA 110 NHYITPMMEL 120 KPNAGSDRAW 130 VWNTHADFAD 140 ECPKPELLAI 150 RFLNAENAQK 160 FKTKFEECRK 170 EIEEREKKAG 180 SGKNDHAEKV 190 AEKLEALSVK 200 EETKEDAEEK Q

Gene Ontology

Classification GO ID Description
Cellular Component GO:0005737 cytoplasm
Cellular Component GO:0005829 cytosol
Cellular Component GO:0005635 nuclear envelope
Cellular Component GO:0005643 nuclear pore
Cellular Component GO:0005634 nucleus
Molecular Function GO:0045296 cadherin binding
Molecular Function GO:0005092 GDP-dissociation inhibitor activity
Molecular Function GO:0005096 GTPase activator activity
Molecular Function GO:0031267 small GTPase binding
Biological Process GO:0051168 nuclear export
Biological Process GO:0007165 signal transduction

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] 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.

[4] Guo X, Ren X, Yan C, Huang H. Quantitative Proteomics Reveals the Role of Lysine Lactylation in Lenalidomide-Resistance in Multiple Myeloma Cells.. ACS Chem Biol 20(7):1728-1738. 2025 Jul 18. PMID: 40590393.

[5] Chao L, Xu Y, Yang Y, Ao X, Liang J. Identification of lactylation-related biomarkers for diagnosis, prognosis, and treatment responsiveness in triple-negative breast cancer.. World J Surg Oncol 24(1):77. 2026 Jan 22. PMID: 41566505.

[6] Wu Q, Li Z, Gong T, Zheng X, Zhou X et al.. Porphyromonas gingivalis infection induces lysine lactylation reprogramming in human umbilical vein endothelial cells.. Front Cell Infect Microbiol 16:1706727. 2026. PMID: 41696360.