<p>Small-cell lung cancers (SCLCs) contain near-universal loss-of-function mutations in <i>RB1</i> and <i>TP53</i>, compromising the G1–S checkpoint and leading to dysregulated E2F activity<sup><CitationRef CitationID="CR1">1</CitationRef></sup>. Other cancers similarly disrupt the G1–S checkpoint through loss of <i>CDKN2A</i> or amplification of cyclin D or cyclin E, also resulting in excessive E2F activity<sup><CitationRef CitationID="CR2">2</CitationRef>,<CitationRef CitationID="CR3">3</CitationRef></sup>. Although E2F activation is essential for cell cycle progression, hyperactivation promotes apoptosis<sup><CitationRef AdditionalCitationIDS="CR5 CR6 CR7 CR8" CitationID="CR4">4</CitationRef>–<CitationRef CitationID="CR9">9</CitationRef></sup>, presenting a therapeutic vulnerability. Cyclin&#xa0;proteins use a conserved hydrophobic patch to bind to substrates bearing short linear RxL motifs<sup><CitationRef AdditionalCitationIDS="CR11 CR12" CitationID="CR10">10</CitationRef>–<CitationRef CitationID="CR13">13</CitationRef></sup>. Cyclin A represses E2F through an RxL-dependent interaction<sup><CitationRef CitationID="CR10">10</CitationRef>,<CitationRef CitationID="CR14">14</CitationRef></sup>, which, when disrupted, hyperactivates E2F<sup><CitationRef CitationID="CR15">15</CitationRef></sup>. However, this substrate interface has remained difficult to target. Here we developed cell-permeable, orally bioavailable macrocyclic peptides that inhibit RxL-mediated interactions of cyclins with their substrates. Dual inhibitors of cyclin A and cyclin B RxL motifs (cyclin A/Bi) selectively kill SCLC cells and other cancer cells with high E2F activity. Genetic screens revealed that cyclin A/Bi induces apoptosis through cyclin B- and CDK2-dependent spindle assembly checkpoint activation. Mechanistically, cyclin A/Bi hyperactivates E2F and cyclin B by blocking cyclin A–E2F and cyclin B–MYT1 RxL interactions. Notably, cyclin A/Bi promoted the formation of neomorphic cyclin B–CDK2 complexes, which drive spindle assembly checkpoint activation and mitotic cell death. Finally, orally administered cyclin A/Bi showed robust anti-tumour activity in chemotherapy-resistant SCLC patient-derived xenografts. These findings reveal gain-of-function mechanisms through which cyclin A/Bi triggers apoptosis and support their development for E2F-driven cancers.</p>

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Targeting G1–S-checkpoint-compromised cancers with cyclin A/B RxL inhibitors

  • Shilpa Singh,
  • Catherine E. Gleason,
  • Min Fang,
  • Yasmin N. Laimon,
  • Vishal Khivansara,
  • Shanhai Xie,
  • Yavuz T. Durmaz,
  • Aniruddha Sarkar,
  • Kenneth Ngo,
  • Varunika Savla,
  • Yixiang Li,
  • Muhannad Abu-Remaileh,
  • Xinyue Li,
  • Marie-Anais Locquet,
  • Bishma Tuladhar,
  • Ranya Odeh,
  • Frances Hamkins-Indik,
  • Daphne He,
  • Miles W. Membreno,
  • Meisam Nosrati,
  • Nathan N. Gushwa,
  • Siegfried S. F. Leung,
  • Breena Fraga-Walton,
  • Luis Hernandez,
  • Miguel P. Baldomero,
  • Bryan M. Lent,
  • David Spellmeyer,
  • Joshua F. Luna,
  • Dalena Hoang,
  • Yuliana Gritsenko,
  • Manesh Chand,
  • Megan K. DeMart,
  • Sammy Metobo,
  • Chinmay Bhatt,
  • Justin A. Shapiro,
  • Kai Yang,
  • Nathan J. Dupper,
  • Andrew T. Bockus,
  • Jinshu Fang,
  • Ramesh Bambal,
  • Peadar Cremin,
  • John G. Doench,
  • James B. Aggen,
  • Li-Fen Liu,
  • Bernard Levin,
  • Evelyn W. Wang,
  • Iolanda Vendrell,
  • Roman Fischer,
  • Benedikt Kessler,
  • Prafulla C. Gokhale,
  • Sabina Signoretti,
  • Alexander Spektor,
  • Constantine Kreatsoulas,
  • Marie Evangelista,
  • Rajinder Singh,
  • David J. Earp,
  • Deepak Nijhawan,
  • Pablo D. Garcia,
  • Matthew G. Oser

摘要

Small-cell lung cancers (SCLCs) contain near-universal loss-of-function mutations in RB1 and TP53, compromising the G1–S checkpoint and leading to dysregulated E2F activity1. Other cancers similarly disrupt the G1–S checkpoint through loss of CDKN2A or amplification of cyclin D or cyclin E, also resulting in excessive E2F activity2,3. Although E2F activation is essential for cell cycle progression, hyperactivation promotes apoptosis49, presenting a therapeutic vulnerability. Cyclin proteins use a conserved hydrophobic patch to bind to substrates bearing short linear RxL motifs1013. Cyclin A represses E2F through an RxL-dependent interaction10,14, which, when disrupted, hyperactivates E2F15. However, this substrate interface has remained difficult to target. Here we developed cell-permeable, orally bioavailable macrocyclic peptides that inhibit RxL-mediated interactions of cyclins with their substrates. Dual inhibitors of cyclin A and cyclin B RxL motifs (cyclin A/Bi) selectively kill SCLC cells and other cancer cells with high E2F activity. Genetic screens revealed that cyclin A/Bi induces apoptosis through cyclin B- and CDK2-dependent spindle assembly checkpoint activation. Mechanistically, cyclin A/Bi hyperactivates E2F and cyclin B by blocking cyclin A–E2F and cyclin B–MYT1 RxL interactions. Notably, cyclin A/Bi promoted the formation of neomorphic cyclin B–CDK2 complexes, which drive spindle assembly checkpoint activation and mitotic cell death. Finally, orally administered cyclin A/Bi showed robust anti-tumour activity in chemotherapy-resistant SCLC patient-derived xenografts. These findings reveal gain-of-function mechanisms through which cyclin A/Bi triggers apoptosis and support their development for E2F-driven cancers.