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1
Regulation of heat shock transcription factors and their roles in physiology and disease.
Nat Rev Mol Cell Biol. 2018 Jan;19(1):4-19. doi: 10.1038/nrm.2017.73. Epub 2017 Aug 30.
2
Interplay between mammalian heat shock factors 1 and 2 in physiology and pathology.
FEBS J. 2022 Dec;289(24):7710-7725. doi: 10.1111/febs.16178. Epub 2021 Sep 14.
4
[Regulation of heat shock gene expression in response to stress].
Mol Biol (Mosk). 2017 May-Jun;51(3):400-417. doi: 10.7868/S0026898417020100.
6
The "HSF connection": Pleiotropic regulation and activities of Heat Shock Factors shape pathophysiological brain development.
Neurosci Lett. 2020 Apr 23;725:134895. doi: 10.1016/j.neulet.2020.134895. Epub 2020 Mar 5.
8
Functional diversification of heat shock factors.
Biol Futur. 2022 Dec;73(4):427-439. doi: 10.1007/s42977-022-00138-z. Epub 2022 Nov 19.

引用本文的文献

1
HSF2 drives breast cancer progression by acting as a stage-specific switch between proliferation and invasion.
Sci Adv. 2025 Sep 5;11(36):eady1289. doi: 10.1126/sciadv.ady1289. Epub 2025 Sep 3.
2
Protein networks: integrating pathways for plant heat stress adaptation.
Funct Integr Genomics. 2025 Sep 2;25(1):183. doi: 10.1007/s10142-025-01685-z.
6
Multifaceted roles of mammalian heat shock factor 1 in the central nervous system.
Cell Stress Chaperones. 2025 Aug 15;30(5):100109. doi: 10.1016/j.cstres.2025.100109.
7
Mathematical modeling of temperature-induced circadian rhythms.
Front Syst Biol. 2024 Mar 25;4:1256398. doi: 10.3389/fsysb.2024.1256398. eCollection 2024.
8
Immunomodulatory effects of photothermal therapy in breast cancer: advances and challenges.
Front Immunol. 2025 Jul 4;16:1544693. doi: 10.3389/fimmu.2025.1544693. eCollection 2025.

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2
Site-specific mapping of the human SUMO proteome reveals co-modification with phosphorylation.
Nat Struct Mol Biol. 2017 Mar;24(3):325-336. doi: 10.1038/nsmb.3366. Epub 2017 Jan 23.
3
Heat shock factor 2 is associated with the occurrence of lung cancer by enhancing the expression of heat shock proteins.
Oncol Lett. 2016 Dec;12(6):5106-5112. doi: 10.3892/ol.2016.5368. Epub 2016 Nov 8.
4
A minimal titration model of the mammalian dynamical heat shock response.
Phys Biol. 2016 Dec 7;13(6):066008. doi: 10.1088/1478-3975/13/6/066008.
5
Protein quantity-quality balance licenses growth.
Cell Cycle. 2016 Dec;15(23):3155-3156. doi: 10.1080/15384101.2016.1220714. Epub 2016 Aug 11.
6
The central role of heat shock factor 1 in synaptic fidelity and memory consolidation.
Cell Stress Chaperones. 2016 Sep;21(5):745-53. doi: 10.1007/s12192-016-0709-1. Epub 2016 Jun 9.
7
HSF1-deficiency affects gait coordination and cerebellar calbindin levels.
Behav Brain Res. 2016 Sep 1;310:103-8. doi: 10.1016/j.bbr.2016.05.015. Epub 2016 May 9.
8
The S/T-Rich Motif in the DNAJB6 Chaperone Delays Polyglutamine Aggregation and the Onset of Disease in a Mouse Model.
Mol Cell. 2016 Apr 21;62(2):272-283. doi: 10.1016/j.molcel.2016.03.017. Epub 2016 Apr 14.
9
Heat shock proteins as potential targets for protective strategies in neurodegeneration.
Lancet Neurol. 2016 Jun;15(7):748-759. doi: 10.1016/S1474-4422(16)00099-5. Epub 2016 Apr 19.
10
HSF1 critically attunes proteotoxic stress sensing by mTORC1 to combat stress and promote growth.
Nat Cell Biol. 2016 May;18(5):527-39. doi: 10.1038/ncb3335. Epub 2016 Apr 4.

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