Literature DB >> 29180475

Distinct TP63 Isoform-Driven Transcriptional Signatures Predict Tumor Progression and Clinical Outcomes.

Hussein A Abbas1,2, Ngoc Hoang Bao Bui1,2,3, Kimal Rajapakshe4, Justin Wong3,5, Preethi Gunaratne6, Kenneth Y Tsai2,7,8, Cristian Coarfa9, Elsa R Flores10,2,8.   

Abstract

TP63 is required to maintain stem cell pluripotency and suppresses the metastatic potential of cancer cells through multiple mechanisms. These functions are differentially regulated by individual isoforms, necessitating a deeper understanding of how the distinct transcriptional programs controlled by these isoforms affect cancer progression and outcomes. In this study, we conducted a pan-cancer analysis of The Cancer Genome Atlas to identify transcriptional networks regulated by TAp63 and ΔNp63 using transcriptomes derived from epidermal cells of TAp63-/- and ΔNp63-/- mice. Analysis of 17 cancer developmental and 27 cancer progression signatures revealed a consistent tumor suppressive pattern for TAp63. In contrast, we identified pleiotropic roles for ΔNp63 in tumor development and found that its regulation of Lef1 was crucial for its oncogenic role. ΔNp63 performed a distinctive role as suppressor of tumor progression by cooperating with TAp63 to modulate key biological pathways, principally cell-cycle regulation, extracellular matrix remodeling, epithelial-to-mesenchymal transition, and the enrichment of pluripotent stem cells. Importantly, these TAp63 and ΔNp63 signatures prognosticated progression and survival, even within specific stages, in bladder and renal carcinomas as well as low-grade gliomas. These data describe a novel approach for understanding transcriptional activities of TP63 isoforms across a large number of cancer types, potentially enabling identification of patient subsets most likely to benefit from therapies predicated on manipulating specific TP63 isoforms.Significance: Transcriptomic analyses of patient samples and murine knockout models highlight the prognostic role of several critical mechanisms of tumor suppression that are regulated by TP63. Cancer Res; 78(2); 451-62. ©2017 AACR. ©2017 American Association for Cancer Research.

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Year:  2017        PMID: 29180475      PMCID: PMC5771893          DOI: 10.1158/0008-5472.CAN-17-1803

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  37 in total

1.  p63 and p73 are required for p53-dependent apoptosis in response to DNA damage.

Authors:  Elsa R Flores; Kenneth Y Tsai; Denise Crowley; Shomit Sengupta; Annie Yang; Frank McKeon; Tyler Jacks
Journal:  Nature       Date:  2002-04-04       Impact factor: 49.962

2.  p63 is a p53 homologue required for limb and epidermal morphogenesis.

Authors:  A A Mills; B Zheng; X J Wang; H Vogel; D R Roop; A Bradley
Journal:  Nature       Date:  1999-04-22       Impact factor: 49.962

3.  A molecular classification of papillary renal cell carcinoma.

Authors:  Ximing J Yang; Min-Han Tan; Hyung L Kim; Jonathon A Ditlev; Mark W Betten; Carolina E Png; Eric J Kort; Kunihiko Futami; Kyle A Furge; Masayuki Takahashi; Hiro-Omi Kanayama; Puay Hoon Tan; Bin Sing Teh; Chunyan Luan; Kim Wang; Michael Pins; Maria Tretiakova; John Anema; Richard Kahnoski; Theresa Nicol; Walter Stadler; Nicholas G Vogelzang; Robert Amato; David Seligson; Robert Figlin; Arie Belldegrun; Craig G Rogers; Bin Tean Teh
Journal:  Cancer Res       Date:  2005-07-01       Impact factor: 12.701

4.  Gene set enrichment analysis: a knowledge-based approach for interpreting genome-wide expression profiles.

Authors:  Aravind Subramanian; Pablo Tamayo; Vamsi K Mootha; Sayan Mukherjee; Benjamin L Ebert; Michael A Gillette; Amanda Paulovich; Scott L Pomeroy; Todd R Golub; Eric S Lander; Jill P Mesirov
Journal:  Proc Natl Acad Sci U S A       Date:  2005-09-30       Impact factor: 11.205

5.  TAp73 knockout shows genomic instability with infertility and tumor suppressor functions.

Authors:  Richard Tomasini; Katsuya Tsuchihara; Margareta Wilhelm; Masashi Fujitani; Alessandro Rufini; Carol C Cheung; Fatima Khan; Annick Itie-Youten; Andrew Wakeham; Ming-Sound Tsao; Juan L Iovanna; Jeremy Squire; Igor Jurisica; David Kaplan; Gerry Melino; Andrea Jurisicova; Tak W Mak
Journal:  Genes Dev       Date:  2008-09-19       Impact factor: 11.361

6.  Expression of p63 and CK5/6 in early-stage lung squamous cell carcinoma is not only an early diagnostic indicator but also correlates with a good prognosis.

Authors:  Yunfan Ma; Mengying Fan; Liang Dai; Xiaozheng Kang; Yiqiang Liu; Yu Sun; Hongchao Xiong; Zhen Liang; Wanpu Yan; Keneng Chen
Journal:  Thorac Cancer       Date:  2015-04-24       Impact factor: 3.500

7.  BAP1 loss defines a new class of renal cell carcinoma.

Authors:  Samuel Peña-Llopis; Silvia Vega-Rubín-de-Celis; Arnold Liao; Nan Leng; Andrea Pavía-Jiménez; Shanshan Wang; Toshinari Yamasaki; Leah Zhrebker; Sharanya Sivanand; Patrick Spence; Lisa Kinch; Tina Hambuch; Suneer Jain; Yair Lotan; Vitaly Margulis; Arthur I Sagalowsky; Pia Banerji Summerour; Wareef Kabbani; S W Wendy Wong; Nick Grishin; Marc Laurent; Xian-Jin Xie; Christian D Haudenschild; Mark T Ross; David R Bentley; Payal Kapur; James Brugarolas
Journal:  Nat Genet       Date:  2012-06-10       Impact factor: 38.330

8.  Predictive value of progression-related gene classifier in primary non-muscle invasive bladder cancer.

Authors:  Wun-Jae Kim; Eun-Jung Kim; Seon-Kyu Kim; Yong-June Kim; Yun-Sok Ha; Pildu Jeong; Min-Ju Kim; Seok-Joong Yun; Keon Myung Lee; Sung-Kwon Moon; Sang-Cheol Lee; Eun-Jong Cha; Suk-Chul Bae
Journal:  Mol Cancer       Date:  2010-01-08       Impact factor: 27.401

9.  ΔNp63 promotes stem cell activity in mammary gland development and basal-like breast cancer by enhancing Fzd7 expression and Wnt signalling.

Authors:  Rumela Chakrabarti; Yong Wei; Julie Hwang; Xiang Hang; Mario Andres Blanco; Abrar Choudhury; Benjamin Tiede; Rose-Anne Romano; Christina DeCoste; Laura Mercatali; Toni Ibrahim; Dino Amadori; Nagarajan Kannan; Connie J Eaves; Satrajit Sinha; Yibin Kang
Journal:  Nat Cell Biol       Date:  2014-09-21       Impact factor: 28.824

10.  Genome-wide analysis of p63 binding sites identifies AP-2 factors as co-regulators of epidermal differentiation.

Authors:  Simon S McDade; Alexandra E Henry; Geraldine P Pivato; Iwanka Kozarewa; Constantinos Mitsopoulos; Kerry Fenwick; Ioannis Assiotis; Jarle Hakas; Marketa Zvelebil; Nicholas Orr; Christopher J Lord; Daksha Patel; Alan Ashworth; Dennis J McCance
Journal:  Nucleic Acids Res       Date:  2012-05-09       Impact factor: 16.971

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  11 in total

1.  p63 Directs Subtype-Specific Gene Expression in HPV+ Head and Neck Squamous Cell Carcinoma.

Authors:  Alexandra Ruth Glathar; Akinsola Oyelakin; Christian Gluck; Jonathan Bard; Satrajit Sinha
Journal:  Front Oncol       Date:  2022-05-31       Impact factor: 5.738

2.  Spatiotemporal Regulation of ΔNp63 by TGFβ-Regulated miRNAs Is Essential for Cancer Metastasis.

Authors:  Ngoc H B Bui; Marco Napoli; Andrew John Davis; Hussein A Abbas; Kimal Rajapakshe; Cristian Coarfa; Elsa R Flores
Journal:  Cancer Res       Date:  2020-04-20       Impact factor: 12.701

3.  An integrative transcriptomic approach to identify depot differences in genes and microRNAs in adipose tissues from high fat fed mice.

Authors:  Nadeeja N Wijayatunga; Mandana Pahlavani; Nishan S Kalupahana; Kameswara Rao Kottapalli; Preethi H Gunaratne; Cristian Coarfa; Latha Ramalingam; Naima Moustaid-Moussa
Journal:  Oncotarget       Date:  2018-01-13

4.  TP63 isoform expression is linked with distinct clinical outcomes in cancer.

Authors:  Armand Bankhead; Thomas McMaster; Yin Wang; Philip S Boonstra; Phillip L Palmbos
Journal:  EBioMedicine       Date:  2020-01-09       Impact factor: 8.143

5.  The p53 family reaches the final frontier: the variegated regulation of the dark matter of the genome by the p53 family in cancer.

Authors:  Marco Napoli; Elsa R Flores
Journal:  RNA Biol       Date:  2020-01-07       Impact factor: 4.652

Review 6.  Supercharging BRD4 with NUT in carcinoma.

Authors:  Kyle P Eagen; Christopher A French
Journal:  Oncogene       Date:  2021-01-15       Impact factor: 9.867

7.  Comprehensive Characterization of the Coding and Non-Coding Single Nucleotide Polymorphisms in the Tumor Protein p63 (TP63) Gene Using In Silico Tools.

Authors:  Shamima Akter; Shafaat Hossain; Md Ackas Ali; Md Ismail Hosen; Hossain Uddin Shekhar
Journal:  Biomolecules       Date:  2021-11-20

8.  Identification and validation of prognostic signature for breast cancer based on genes potentially involved in autophagy.

Authors:  Shanliang Zhong; Huanwen Chen; Sujin Yang; Jifeng Feng; Siying Zhou
Journal:  PeerJ       Date:  2020-07-27       Impact factor: 2.984

9.  Development of an integrated CRISPRi targeting ΔNp63 for treatment of squamous cell carcinoma.

Authors:  Masakazu Yoshida; Etsuko Yokota; Tetsushi Sakuma; Tomoki Yamatsuji; Nagio Takigawa; Toshikazu Ushijima; Takashi Yamamoto; Takuya Fukazawa; Yoshio Naomoto
Journal:  Oncotarget       Date:  2018-06-26

10.  ΔNp63 regulates a common landscape of enhancer associated genes in non-small cell lung cancer.

Authors:  Marco Napoli; Sarah J Wu; Bethanie L Gore; Hussein A Abbas; Kyubum Lee; Rahul Checker; Shilpa Dhar; Kimal Rajapakshe; Aik Choon Tan; Min Gyu Lee; Cristian Coarfa; Elsa R Flores
Journal:  Nat Commun       Date:  2022-02-01       Impact factor: 17.694

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