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Genomic analysis of 220 CTCLs identifies a novel recurrent gain-of-function alteration in RLTPR (p.Q575E).
Blood. 2017 Sep 21;130(12):1430-1440. doi: 10.1182/blood-2017-02-768234. Epub 2017 Jul 10.
2
RLTPR Q575E: A novel recurrent gain-of-function mutation in patients with adult T-cell leukemia/lymphoma.
Eur J Haematol. 2021 Feb;106(2):221-229. doi: 10.1111/ejh.13540. Epub 2020 Nov 17.
3
Genetics of Cutaneous T Cell Lymphoma: From Bench to Bedside.
Curr Treat Options Oncol. 2016 Jul;17(7):33. doi: 10.1007/s11864-016-0410-8.
4
The scaffolding function of the RLTPR protein explains its essential role for CD28 co-stimulation in mouse and human T cells.
J Exp Med. 2016 Oct 17;213(11):2437-2457. doi: 10.1084/jem.20160579. Epub 2016 Sep 19.
6
Genomic landscape of cutaneous T cell lymphoma.
Nat Genet. 2015 Sep;47(9):1011-9. doi: 10.1038/ng.3356. Epub 2015 Jul 20.
8
Dual T cell- and B cell-intrinsic deficiency in humans with biallelic RLTPR mutations.
J Exp Med. 2016 Oct 17;213(11):2413-2435. doi: 10.1084/jem.20160576. Epub 2016 Sep 19.
9
Genetic and epigenetic insights into cutaneous T-cell lymphoma.
Blood. 2022 Jan 6;139(1):15-33. doi: 10.1182/blood.2019004256.

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Janus kinase inhibitors - a role for the treatment of cutaneous T-cell lymphomas?
Oncol Rev. 2025 Aug 11;19:1482866. doi: 10.3389/or.2025.1482866. eCollection 2025.
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A CARMIL2 gain-of-function mutation suffices to trigger most CD28 costimulatory functions in vivo.
J Exp Med. 2025 Aug 4;222(8). doi: 10.1084/jem.20250339. Epub 2025 May 22.
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Management of T-cell malignancies: Bench-to-bedside targeting of epigenetic biology.
CA Cancer J Clin. 2025 Jul-Aug;75(4):282-307. doi: 10.3322/caac.70001. Epub 2025 Apr 15.
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Hyperactive PLCG1 drives non-canonical signaling to promote cell survival.
bioRxiv. 2024 Dec 18:2024.12.17.628879. doi: 10.1101/2024.12.17.628879.
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The monogenic landscape of human infectious diseases.
J Allergy Clin Immunol. 2025 Mar;155(3):768-783. doi: 10.1016/j.jaci.2024.12.1078. Epub 2024 Dec 24.

本文引用的文献

1
The scaffolding function of the RLTPR protein explains its essential role for CD28 co-stimulation in mouse and human T cells.
J Exp Med. 2016 Oct 17;213(11):2437-2457. doi: 10.1084/jem.20160579. Epub 2016 Sep 19.
2
Targeting the cancer epigenome for therapy.
Nat Rev Genet. 2016 Sep 15;17(10):630-41. doi: 10.1038/nrg.2016.93.
4
Activating mutations in genes related to TCR signaling in angioimmunoblastic and other follicular helper T-cell-derived lymphomas.
Blood. 2016 Sep 15;128(11):1490-502. doi: 10.1182/blood-2016-02-698977. Epub 2016 Jul 1.
5
Genetics of Cutaneous T Cell Lymphoma: From Bench to Bedside.
Curr Treat Options Oncol. 2016 Jul;17(7):33. doi: 10.1007/s11864-016-0410-8.
6
Candidate driver genes involved in genome maintenance and DNA repair in Sézary syndrome.
Blood. 2016 Jun 30;127(26):3387-97. doi: 10.1182/blood-2016-02-699843. Epub 2016 Apr 27.
7
Identification of Gene Mutations and Fusion Genes in Patients with Sézary Syndrome.
J Invest Dermatol. 2016 Jul;136(7):1490-1499. doi: 10.1016/j.jid.2016.03.024. Epub 2016 Mar 30.
8
Structural basis of lenalidomide-induced CK1α degradation by the CRL4(CRBN) ubiquitin ligase.
Nature. 2016 Apr 7;532(7597):127-30. doi: 10.1038/nature16979. Epub 2016 Feb 24.
9
Recurrent activating mutations of CD28 in peripheral T-cell lymphomas.
Leukemia. 2016 May;30(5):1062-70. doi: 10.1038/leu.2015.357. Epub 2015 Dec 31.
10
PTPRN2 and PLCβ1 promote metastatic breast cancer cell migration through PI(4,5)P2-dependent actin remodeling.
EMBO J. 2016 Jan 4;35(1):62-76. doi: 10.15252/embj.201591973. Epub 2015 Nov 30.

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