Literature DB >> 29871936

The Canonical Wnt Pathway Drives Macropinocytosis in Cancer.

Gil Redelman-Sidi1, Anna Binyamin2, Isabella Gaeta3, Wilhelm Palm4, Craig B Thompson4, Paul B Romesser4, Scott W Lowe4, Mukta Bagul5, John G Doench5, David E Root5, Michael S Glickman6,2.   

Abstract

Macropinocytosis has emerged as an important pathway of protein acquisition in cancer cells, particularly in tumors with activated Ras such as pancreatic and colon cancer. Macropinocytosis is also the route of entry of Bacillus Calmette-Guerin (BCG) and other microbial therapies of cancer. Despite this important role in tumor biology and therapy, the full mechanisms by which cancer cells can activate macropinocytosis remain incompletely defined. Using BCG uptake to assay macropinocytosis, we executed a genome-wide shRNA screen for macropinocytosis activators and identified Wnt pathway activation as a strong driver of macropinocytosis. Wnt-driven macropinocytosis was downstream of the β-catenin-dependent canonical Wnt pathway, was PAK1 dependent, and supported albumin-dependent growth in Ras-WT cells. In cells with activated Ras-dependent macropinocytosis, pharmacologic or genetic inhibition of Wnt signaling suppressed macropinocytosis. In a mouse model of Wnt-driven colonic hyperplasia via APC silencing, Wnt-activated macropinocytosis stimulated uptake of luminal microbiota, a process reversed by topical pharmacologic inhibition of macropinocytosis. Our findings indicate that Wnt pathway activation drives macropinocytosis in cancer, and its inhibition could provide a therapeutic vulnerability in Wnt-driven intestinal polyposis and cancers with Wnt activation.Significance: The Wnt pathway drives macropinocytosis in cancer cells, thereby contributing to cancer growth in nutrient-deficient conditions and, in the context of colon cancer, to the early phases of oncogenesis. Cancer Res; 78(16); 4658-70. ©2018 AACR. ©2018 American Association for Cancer Research.

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Year:  2018        PMID: 29871936      PMCID: PMC6226250          DOI: 10.1158/0008-5472.CAN-17-3199

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   13.312


  50 in total

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Journal:  Nat Cell Biol       Date:  2002-08       Impact factor: 28.824

2.  Germ-line mutations of the APC gene in 53 familial adenomatous polyposis patients.

Authors:  Y Miyoshi; H Ando; H Nagase; I Nishisho; A Horii; Y Miki; T Mori; J Utsunomiya; S Baba; G Petersen
Journal:  Proc Natl Acad Sci U S A       Date:  1992-05-15       Impact factor: 11.205

3.  Human pancreatic cancer tumors are nutrient poor and tumor cells actively scavenge extracellular protein.

Authors:  Jurre J Kamphorst; Michel Nofal; Cosimo Commisso; Sean R Hackett; Wenyun Lu; Elda Grabocka; Matthew G Vander Heiden; George Miller; Jeffrey A Drebin; Dafna Bar-Sagi; Craig B Thompson; Joshua D Rabinowitz
Journal:  Cancer Res       Date:  2015-02-01       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.  Gut microbiota accelerate tumor growth via c-jun and STAT3 phosphorylation in APCMin/+ mice.

Authors:  Yinghui Li; Parag Kundu; Shih Wee Seow; Cristina Teixeira de Matos; Linda Aronsson; Keh Chuang Chin; Klas Kärre; Sven Pettersson; Gediminas Greicius
Journal:  Carcinogenesis       Date:  2012-03-29       Impact factor: 4.944

6.  Lentiviral vectors to probe and manipulate the Wnt signaling pathway.

Authors:  Christophe Fuerer; Roel Nusse
Journal:  PLoS One       Date:  2010-02-23       Impact factor: 3.240

7.  A small molecule inhibitor of beta-catenin/CREB-binding protein transcription [corrected].

Authors:  Katayoon H Emami; Cu Nguyen; Hong Ma; Dae Hoon Kim; Kwang Won Jeong; Masakatsu Eguchi; Randall T Moon; Jia-Ling Teo; Se Woong Oh; Hak Yeop Kim; Sung Hwan Moon; Jong Ryul Ha; Michael Kahn
Journal:  Proc Natl Acad Sci U S A       Date:  2004-08-16       Impact factor: 11.205

8.  Dickkopf-1 antagonizes Wnt signaling independent of beta-catenin in human mesothelioma.

Authors:  Amie Y Lee; Biao He; Liang You; Zhidong Xu; Julien Mazieres; Noemi Reguart; Iwao Mikami; Sonny Batra; David M Jablons
Journal:  Biochem Biophys Res Commun       Date:  2004-10-29       Impact factor: 3.575

9.  A genome-scale RNA interference screen implicates NF1 loss in resistance to RAF inhibition.

Authors:  Steven R Whittaker; Jean-Philippe Theurillat; Eliezer Van Allen; Nikhil Wagle; Jessica Hsiao; Glenn S Cowley; Dirk Schadendorf; David E Root; Levi A Garraway
Journal:  Cancer Discov       Date:  2013-01-03       Impact factor: 39.397

10.  A rapid and scalable system for studying gene function in mice using conditional RNA interference.

Authors:  Prem K Premsrirut; Lukas E Dow; Sang Yong Kim; Matthew Camiolo; Colin D Malone; Cornelius Miething; Claudio Scuoppo; Johannes Zuber; Ross A Dickins; Scott C Kogan; Kenneth R Shroyer; Raffaella Sordella; Gregory J Hannon; Scott W Lowe
Journal:  Cell       Date:  2011-04-01       Impact factor: 41.582

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  33 in total

Review 1.  The pervasiveness of macropinocytosis in oncological malignancies.

Authors:  Cosimo Commisso
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2019-02-04       Impact factor: 6.237

2.  Macropinocytosis in Cancer: A Complex Signaling Network.

Authors:  Yijuan Zhang; Cosimo Commisso
Journal:  Trends Cancer       Date:  2019-05-09

3.  PI3Kβ is selectively required for growth factor-stimulated macropinocytosis.

Authors:  Gilbert Salloum; Charles T Jakubik; Zahra Erami; Samantha D Heitz; Anne R Bresnick; Jonathan M Backer
Journal:  J Cell Sci       Date:  2019-08-16       Impact factor: 5.285

4.  Automated Imaging and Analysis for the Quantification of Fluorescently Labeled Macropinosomes.

Authors:  Koen M O Galenkamp; Cheska Marie Galapate; Yijuan Zhang; Cosimo Commisso
Journal:  J Vis Exp       Date:  2021-08-24       Impact factor: 1.355

Review 5.  Wnt, GSK3, and Macropinocytosis.

Authors:  Nydia Tejeda-Muñoz; Edward M De Robertis
Journal:  Subcell Biochem       Date:  2022

6.  Signaling Pathways that Regulate Macropinocytosis in Mammalian Cells.

Authors:  Wilhelm Palm
Journal:  Subcell Biochem       Date:  2022

Review 7.  Exploiting cancer's drinking problem: regulation and therapeutic potential of macropinocytosis.

Authors:  Joseph Puccini; Michael Alexander Badgley; Dafna Bar-Sagi
Journal:  Trends Cancer       Date:  2021-10-11

8.  Macropinocytosis as a Key Determinant of Peptidomimetic Uptake in Cancer Cells.

Authors:  Daniel Y Yoo; Stephanie A Barros; Gordon C Brown; Christian Rabot; Dafna Bar-Sagi; Paramjit S Arora
Journal:  J Am Chem Soc       Date:  2020-08-13       Impact factor: 15.419

9.  Therapeutically reprogrammed nutrient signalling enhances nanoparticulate albumin bound drug uptake and efficacy in KRAS-mutant cancer.

Authors:  Ran Li; Thomas S C Ng; Stephanie J Wang; Mark Prytyskach; Christopher B Rodell; Hannes Mikula; Rainer H Kohler; Michelle A Garlin; Douglas A Lauffenburger; Sareh Parangi; Daniela M Dinulescu; Nabeel Bardeesy; Ralph Weissleder; Miles A Miller
Journal:  Nat Nanotechnol       Date:  2021-05-06       Impact factor: 40.523

10.  Combined Proteomic and Genetic Interaction Mapping Reveals New RAS Effector Pathways and Susceptibilities.

Authors:  Marcus R Kelly; Kaja Kostyrko; Kyuho Han; Nancie A Mooney; Edwin E Jeng; Kaitlyn Spees; Phuong T Dinh; Keene L Abbott; Dana M Gwinn; E Alejandro Sweet-Cordero; Michael C Bassik; Peter K Jackson
Journal:  Cancer Discov       Date:  2020-07-29       Impact factor: 38.272

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