Literature DB >> 36241868

AKT-mTORC1 reactivation is the dominant resistance driver for PI3Kβ/AKT inhibitors in PTEN-null breast cancer and can be overcome by combining with Mcl-1 inhibitors.

Shanade Dunn1,2, Cath Eberlein3, Jason Yu1,4, Albert Gris-Oliver5, Swee Hoe Ong1, Urs Yelland3, Natalie Cureton3, Anna Staniszewska2, Robert McEwen2, Millie Fox2, James Pilling6, Philip Hopcroft6, Elizabeth A Coker1, Patricia Jaaks1, Mathew J Garnett1, Beverley Isherwood6, Violeta Serra5, Barry R Davies2, Simon T Barry7, James T Lynch2, Kosuke Yusa8,9.   

Abstract

The PI3K pathway is commonly activated in breast cancer, with PI3K-AKT pathway inhibitors used clinically. However, mechanisms that limit or enhance the therapeutic effects of PI3K-AKT inhibitors are poorly understood at a genome-wide level. Parallel CRISPR screens in 3 PTEN-null breast cancer cell lines identified genes mediating resistance to capivasertib (AKT inhibitor) and AZD8186 (PI3Kβ inhibitor). The dominant mechanism causing resistance is reactivated PI3K-AKT-mTOR signalling, but not other canonical signalling pathways. Deletion of TSC1/2 conferred resistance to PI3Kβi and AKTi through mTORC1. However, deletion of PIK3R2 and INPPL1 drove specific PI3Kβi resistance through AKT. Conversely deletion of PIK3CA, ERBB2, ERBB3 increased PI3Kβi sensitivity while modulation of RRAGC, LAMTOR1, LAMTOR4 increased AKTi sensitivity. Significantly, we found that Mcl-1 loss enhanced response through rapid apoptosis induction with AKTi and PI3Kβi in both sensitive and drug resistant TSC1/2 null cells. The combination effect was BAK but not BAX dependent. The Mcl-1i + PI3Kβ/AKTi combination was effective across a panel of breast cancer cell lines with PIK3CA and PTEN mutations, and delivered increased anti-tumor benefit in vivo. This study demonstrates that different resistance drivers to PI3Kβi and AKTi converge to reactivate PI3K-AKT or mTOR signalling and combined inhibition of Mcl-1 and PI3K-AKT has potential as a treatment strategy for PI3Kβi/AKTi sensitive and resistant breast tumours.
© 2022. The Author(s).

Entities:  

Year:  2022        PMID: 36241868     DOI: 10.1038/s41388-022-02482-9

Source DB:  PubMed          Journal:  Oncogene        ISSN: 0950-9232            Impact factor:   8.756


  45 in total

1.  Inhibition of PI3Kβ signaling with AZD8186 inhibits growth of PTEN-deficient breast and prostate tumors alone and in combination with docetaxel.

Authors:  Urs Hancox; Sabina Cosulich; Lyndsey Hanson; Cath Trigwell; Carol Lenaghan; Rebecca Ellston; Hannah Dry; Claire Crafter; Bernard Barlaam; Martina Fitzek; Paul D Smith; Donald Ogilvie; Celina D'Cruz; Lillian Castriotta; Stephen R Wedge; Lara Ward; Steve Powell; Mandy Lawson; Barry R Davies; Elizabeth A Harrington; Emily Foster; Marie Cumberbatch; Stephen Green; Simon T Barry
Journal:  Mol Cancer Ther       Date:  2014-11-14       Impact factor: 6.261

2.  Ipatasertib plus paclitaxel versus placebo plus paclitaxel as first-line therapy for metastatic triple-negative breast cancer (LOTUS): a multicentre, randomised, double-blind, placebo-controlled, phase 2 trial.

Authors:  Sung-Bae Kim; Rebecca Dent; Seock-Ah Im; Marc Espié; Sibel Blau; Antoinette R Tan; Steven J Isakoff; Mafalda Oliveira; Cristina Saura; Matthew J Wongchenko; Amy V Kapp; Wai Y Chan; Stina M Singel; Daniel J Maslyar; José Baselga
Journal:  Lancet Oncol       Date:  2017-08-08       Impact factor: 41.316

3.  Genomic characterization of metastatic breast cancers.

Authors:  François Bertucci; Charlotte K Y Ng; Anne Patsouris; Thomas Filleron; Christophe Le Tourneau; Fabrice André; Nathalie Droin; Salvatore Piscuoglio; Nadine Carbuccia; Jean Charles Soria; Alicia Tran Dien; Yahia Adnani; Maud Kamal; Séverine Garnier; Guillaume Meurice; Marta Jimenez; Semih Dogan; Benjamin Verret; Max Chaffanet; Thomas Bachelot; Mario Campone; Claudia Lefeuvre; Herve Bonnefoi; Florence Dalenc; Alexandra Jacquet; Maria R De Filippo; Naveen Babbar; Daniel Birnbaum
Journal:  Nature       Date:  2019-05-22       Impact factor: 49.962

4.  AKT Inhibition in Solid Tumors With AKT1 Mutations.

Authors:  David M Hyman; Lillian M Smyth; Mark T A Donoghue; Shannon N Westin; Philippe L Bedard; Emma J Dean; Hideaki Bando; Anthony B El-Khoueiry; José A Pérez-Fidalgo; Alain Mita; Jan H M Schellens; Matthew T Chang; Jonathan B Reichel; Nancy Bouvier; S Duygu Selcuklu; Tara E Soumerai; Jean Torrisi; Joseph P Erinjeri; Helen Ambrose; J Carl Barrett; Brian Dougherty; Andrew Foxley; Justin P O Lindemann; Robert McEwen; Martin Pass; Gaia Schiavon; Michael F Berger; Sarat Chandarlapaty; David B Solit; Udai Banerji; José Baselga; Barry S Taylor
Journal:  J Clin Oncol       Date:  2017-05-10       Impact factor: 44.544

5.  Preclinical pharmacology of AZD5363, an inhibitor of AKT: pharmacodynamics, antitumor activity, and correlation of monotherapy activity with genetic background.

Authors:  Barry R Davies; Hannah Greenwood; Phillippa Dudley; Claire Crafter; De-Hua Yu; Jingchuan Zhang; Jing Li; Beirong Gao; Qunsheng Ji; Juliana Maynard; Sally-Ann Ricketts; Darren Cross; Sabina Cosulich; Christine C Chresta; Ken Page; James Yates; Clare Lane; Rebecca Watson; Richard Luke; Donald Ogilvie; Martin Pass
Journal:  Mol Cancer Ther       Date:  2012-01-31       Impact factor: 6.261

6.  Tumors with AKT1E17K Mutations Are Rational Targets for Single Agent or Combination Therapy with AKT Inhibitors.

Authors:  Barry R Davies; Nin Guan; Armelle Logie; Claire Crafter; Lyndsey Hanson; Vivien Jacobs; Neil James; Philippa Dudley; Kelly Jacques; Brendon Ladd; Celina M D'Cruz; Michael Zinda; Justin Lindemann; Makoto Kodaira; Kenji Tamura; Emma L Jenkins
Journal:  Mol Cancer Ther       Date:  2015-09-08       Impact factor: 6.261

7.  PTEN-deficient cancers depend on PIK3CB.

Authors:  Susan Wee; Dmitri Wiederschain; Sauveur-Michel Maira; Alice Loo; Christine Miller; Rosalie deBeaumont; Frank Stegmeier; Yung-Mae Yao; Christoph Lengauer
Journal:  Proc Natl Acad Sci U S A       Date:  2008-08-28       Impact factor: 11.205

8.  Landscape of Phosphatidylinositol-3-Kinase Pathway Alterations Across 19 784 Diverse Solid Tumors.

Authors:  Sherri Z Millis; Sadakatsu Ikeda; Sandeep Reddy; Zoran Gatalica; Razelle Kurzrock
Journal:  JAMA Oncol       Date:  2016-12-01       Impact factor: 31.777

9.  Fulvestrant plus capivasertib versus placebo after relapse or progression on an aromatase inhibitor in metastatic, oestrogen receptor-positive breast cancer (FAKTION): a multicentre, randomised, controlled, phase 2 trial.

Authors:  Robert H Jones; Angela Casbard; Margherita Carucci; Catrin Cox; Rachel Butler; Fouad Alchami; Tracie-Ann Madden; Catherine Bale; Pavel Bezecny; Johnathan Joffe; Sarah Moon; Chris Twelves; Ramachandran Venkitaraman; Simon Waters; Andrew Foxley; Sacha J Howell
Journal:  Lancet Oncol       Date:  2020-02-05       Impact factor: 41.316

10.  Genomics of Drug Sensitivity in Cancer (GDSC): a resource for therapeutic biomarker discovery in cancer cells.

Authors:  Wanjuan Yang; Jorge Soares; Patricia Greninger; Elena J Edelman; Howard Lightfoot; Simon Forbes; Nidhi Bindal; Dave Beare; James A Smith; I Richard Thompson; Sridhar Ramaswamy; P Andrew Futreal; Daniel A Haber; Michael R Stratton; Cyril Benes; Ultan McDermott; Mathew J Garnett
Journal:  Nucleic Acids Res       Date:  2012-11-23       Impact factor: 16.971

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