Genome wide CRISPR/Cas9 screen identifies the coagulation factor IX (F9) as a regulator of senescence

被引:0
|
作者
Paula Carpintero-Fernández
Michela Borghesan
Olga Eleftheriadou
Belen Pan-Castillo
Juan Antonio Fafián-Labora
Tom P. Mitchell
Alejandro Yuste
Muge Ogrunc
Thomas D. Nightingale
Maria Mayan
Ana O’Loghlen
机构
[1] Epigenetics & Cellular Senescence Group; Blizard Institute; Barts and The London School of Medicine and Dentistry; Queen Mary University of London; 4 Newark Street,CellCOM Research Group. Instituto de Investigación Biomédica de A Coruña (INIBIC). CH
[2] StarkAge Therapeutics,Universitario A Coruña (XXIAC)
[3] Campus de l’Institut Pasteur de Lille,Grupo de investigación en Terapia Celular y Medicina Regenerativa, Departamento de Fisioterapia, Medicina y Ciencias Biomédicas, Facultad de Ciencias de la Salud
[4] 1 rue du Professeur Calmette,undefined
[5] Centre for Microvascular Research. The William Harvey Research Institute. Charterhouse Square Barts and the London School of Medicine and Dentistry Queen Mary University of London,undefined
[6] EC1M 6BQ,undefined
[7] CellCOM Research Group. Instituto de Investigación Biomédica de A Coruña (INIBIC). CH-Universitario A Coruña (XXIAC). Universidade da Coruña. Servizo Galego de Saúde (SERGAS). Xubias de Arriba,undefined
[8] SynLab Hauts-de-France,undefined
[9] Campus de l’Institut Pasteur de Lille,undefined
[10] 1 rue du Professeur Calmette,undefined
[11] Universidade da Coruña. Servizo Galego de Saúde (SERGAS) Xubias de Arriba,undefined
[12] Universidade da Coruña,undefined
[13] INIBIC-Complejo Hospitalario Universitario A Coruña (CHUAC),undefined
[14] Agrupación estratégica CICA-INIBIC,undefined
[15] As Xubías,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
During this last decade, the development of prosenescence therapies has become an attractive strategy as cellular senescence acts as a barrier against tumour progression. In this context, CDK4/6 inhibitors induce senescence and reduce tumour growth in breast cancer patients. However, even though cancer cells are arrested after CDK4/6 inhibitor treatment, genes regulating senescence in this context are still unknown limiting their antitumour activity. Here, using a functional genome-wide CRISPR/Cas9 genetic screen we found several genes that participate in the proliferation arrest induced by CDK4/6 inhibitors. We find that downregulation of the coagulation factor IX (F9) using sgRNA and shRNA prevents the cell cycle arrest and senescent-like phenotype induced in MCF7 breast tumour cells upon Palbociclib treatment. These results were confirmed using another breast cancer cell line, T47D, and with an alternative CDK4/6 inhibitor, Abemaciclib, and further tested in a panel of 22 cancer cells. While F9 knockout prevents the induction of senescence, treatment with a recombinant F9 protein was sufficient to induce a cell cycle arrest and senescence-like state in MCF7 tumour cells. Besides, endogenous F9 is upregulated in different human primary cells cultures undergoing senescence. Importantly, bioinformatics analysis of cancer datasets suggest a role for F9 in human tumours. Altogether, these data collectively propose key genes involved in CDK4/6 inhibitor response that will be useful to design new therapeutic strategies in personalised medicine in order to increase their efficiency, stratify patients and avoid drug resistance.
引用
收藏
相关论文
共 50 条
  • [31] Genome-Wide CRISPR/Cas9 Knock-out Screen Identifies Apoptosis-Relevant Genes in Multiple Myeloma
    Andersson-Rusch, Clara Leticia
    Quist-Lokken, Ingrid
    Saetrom, Pal
    Beisvag, Vidar
    Rolinski, Milosz
    Aas, Per Arne
    van Loon, Barbara
    Holien, Toril
    BLOOD, 2023, 142
  • [32] Genome-wide CRISPR/Cas9 screen identifies host factors important for porcine reproductive and respiratory syndrome virus replication
    Jiang, Jinhe
    Sun, Yumei
    Wang, Yunlong
    Sabek, Ahmed
    Shangguan, Aishao
    Wang, Kai
    Zhao, Shuhong
    Li, Guoliang
    Zhou, Ao
    Zhang, Shujun
    VIRUS RESEARCH, 2022, 314
  • [33] A GENOME-WIDE CRISPR/CAS9 SCREEN TO IDENTIFY NOVEL THERAPEUTIC TARGETS FOR UVEAL MELANOMA
    Li, Fan
    Singh, Vikrant
    Lu, Vivienne
    Chen, Jinying
    Hung, Sandy S. C.
    Dickinson, Joanne L.
    Taberlay, Phillippa
    Cook, Anthony L.
    Hewitt, Alex W.
    Liu, Guei-Sheung
    CLINICAL AND EXPERIMENTAL OPHTHALMOLOGY, 2018, 46 : 28 - 28
  • [34] Genome-wide CRISPR/Cas9 library screen identifies C16orf62 as a host dependency factor for porcine deltacoronavirus infection
    Ma, Ningning
    Zhang, Mengjia
    Zhou, Jiaru
    Jiang, Changsheng
    Ghonaim, Ahmed H.
    Sun, Yumei
    Zhou, Pei
    Guo, Guanghao
    Evers, Anouk
    Zhu, Hongmei
    He, Qigai
    Lebbink, Robert Jan
    Bosch, Berend Jan
    Li, Wentao
    EMERGING MICROBES & INFECTIONS, 2024, 13 (01)
  • [35] Genome-Wide CRISPR/Cas9 Screening Identifies GPR108 as a Highly Conserved AAV Entry Factor
    Dudek, Amanda M.
    Zinn, Eric
    Pillay, Sirika
    Zengel, James
    Carette, Jan E.
    Vandenberghe, Luk H.
    MOLECULAR THERAPY, 2019, 27 (04) : 313 - 314
  • [36] Improving the efficiency of Cas9/CRISPR genome engineering by optimizing Cas9 delivery
    Pelczar, Pawel
    Oller, Heide
    Kornete, Mara
    Schreiner, Dietmar
    Hermann, Mario
    Jeker, Lukas
    TRANSGENIC RESEARCH, 2016, 25 (02) : 255 - 256
  • [37] Whole genome CRISPR/Cas9 screen identifies established and novel genes required for ovarian cancer dissemination
    Wheeler, L. J.
    Watson, Z. L.
    Yamamoto, T. M.
    Sullivan, K. D.
    Bitler, B. G.
    GYNECOLOGIC ONCOLOGY, 2019, 154 : 90 - 90
  • [38] Genome-scale CRISPR/Cas9 screen identifies factors required for sensitivity to pyrimidine nucleoside analogs
    Sarr, Awa
    Bre, Jennifer
    Mullen, Peter
    Blagden, Sarah
    Um, In Hwa
    Harrison, David J.
    Reynolds, Paul A.
    CANCER RESEARCH, 2018, 78 (13)
  • [39] The CRISPR/Cas9 Genome Editing Revolution
    Renjie Jiao
    Caixia Gao
    Journal of Genetics and Genomics, 2016, 43 (05) : 227 - 228
  • [40] Cascading CRISPR–Cas9 genome edits
    Clyde D.
    Nature Reviews Genetics, 2021, 22 (3) : 134 - 134