Cargando…

A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells

Cancers represent complex autonomous systems, displaying self‐sufficiency in growth signaling. Autonomous growth is fueled by a cancer cell's ability to “secrete‐and‐sense” growth factors (GFs): a poorly understood phenomenon. Using an integrated computational and experimental approach, here we...

Descripción completa

Detalles Bibliográficos
Autores principales: Qiao, Lingxia, Sinha, Saptarshi, Abd El‐Hafeez, Amer Ali, Lo, I‐Chung, Midde, Krishna K, Ngo, Tony, Aznar, Nicolas, Lopez‐Sanchez, Inmaculada, Gupta, Vijay, Farquhar, Marilyn G, Rangamani, Padmini, Ghosh, Pradipta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10090951/
https://www.ncbi.nlm.nih.gov/pubmed/36856068
http://dx.doi.org/10.15252/msb.202211127
_version_ 1785023064637964288
author Qiao, Lingxia
Sinha, Saptarshi
Abd El‐Hafeez, Amer Ali
Lo, I‐Chung
Midde, Krishna K
Ngo, Tony
Aznar, Nicolas
Lopez‐Sanchez, Inmaculada
Gupta, Vijay
Farquhar, Marilyn G
Rangamani, Padmini
Ghosh, Pradipta
author_facet Qiao, Lingxia
Sinha, Saptarshi
Abd El‐Hafeez, Amer Ali
Lo, I‐Chung
Midde, Krishna K
Ngo, Tony
Aznar, Nicolas
Lopez‐Sanchez, Inmaculada
Gupta, Vijay
Farquhar, Marilyn G
Rangamani, Padmini
Ghosh, Pradipta
author_sort Qiao, Lingxia
collection PubMed
description Cancers represent complex autonomous systems, displaying self‐sufficiency in growth signaling. Autonomous growth is fueled by a cancer cell's ability to “secrete‐and‐sense” growth factors (GFs): a poorly understood phenomenon. Using an integrated computational and experimental approach, here we dissect the impact of a feedback‐coupled GTPase circuit within the secretory pathway that imparts secretion‐coupled autonomy. The circuit is assembled when the Ras‐superfamily monomeric GTPase Arf1, and the heterotrimeric GTPase Giαβγ and their corresponding GAPs and GEFs are coupled by GIV/Girdin, a protein that is known to fuel aggressive traits in diverse cancers. One forward and two key negative feedback loops within the circuit create closed‐loop control, allow the two GTPases to coregulate each other, and convert the expected switch‐like behavior of Arf1‐dependent secretion into an unexpected dose–response alignment behavior of sensing and secretion. Such behavior translates into cell survival that is self‐sustained by stimulus‐proportionate secretion. Proteomic studies and protein–protein interaction network analyses pinpoint GFs (e.g., the epidermal GF) as key stimuli for such self‐sustenance. Findings highlight how the enhanced coupling of two biological switches in cancer cells is critical for multiscale feedback control to achieve secretion‐coupled autonomy of growth factors.
format Online
Article
Text
id pubmed-10090951
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-100909512023-04-13 A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells Qiao, Lingxia Sinha, Saptarshi Abd El‐Hafeez, Amer Ali Lo, I‐Chung Midde, Krishna K Ngo, Tony Aznar, Nicolas Lopez‐Sanchez, Inmaculada Gupta, Vijay Farquhar, Marilyn G Rangamani, Padmini Ghosh, Pradipta Mol Syst Biol Articles Cancers represent complex autonomous systems, displaying self‐sufficiency in growth signaling. Autonomous growth is fueled by a cancer cell's ability to “secrete‐and‐sense” growth factors (GFs): a poorly understood phenomenon. Using an integrated computational and experimental approach, here we dissect the impact of a feedback‐coupled GTPase circuit within the secretory pathway that imparts secretion‐coupled autonomy. The circuit is assembled when the Ras‐superfamily monomeric GTPase Arf1, and the heterotrimeric GTPase Giαβγ and their corresponding GAPs and GEFs are coupled by GIV/Girdin, a protein that is known to fuel aggressive traits in diverse cancers. One forward and two key negative feedback loops within the circuit create closed‐loop control, allow the two GTPases to coregulate each other, and convert the expected switch‐like behavior of Arf1‐dependent secretion into an unexpected dose–response alignment behavior of sensing and secretion. Such behavior translates into cell survival that is self‐sustained by stimulus‐proportionate secretion. Proteomic studies and protein–protein interaction network analyses pinpoint GFs (e.g., the epidermal GF) as key stimuli for such self‐sustenance. Findings highlight how the enhanced coupling of two biological switches in cancer cells is critical for multiscale feedback control to achieve secretion‐coupled autonomy of growth factors. John Wiley and Sons Inc. 2023-03-01 /pmc/articles/PMC10090951/ /pubmed/36856068 http://dx.doi.org/10.15252/msb.202211127 Text en © 2023 The Authors. Published under the terms of the CC BY 4.0 license https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Qiao, Lingxia
Sinha, Saptarshi
Abd El‐Hafeez, Amer Ali
Lo, I‐Chung
Midde, Krishna K
Ngo, Tony
Aznar, Nicolas
Lopez‐Sanchez, Inmaculada
Gupta, Vijay
Farquhar, Marilyn G
Rangamani, Padmini
Ghosh, Pradipta
A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title_full A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title_fullStr A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title_full_unstemmed A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title_short A circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
title_sort circuit for secretion‐coupled cellular autonomy in multicellular eukaryotic cells
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10090951/
https://www.ncbi.nlm.nih.gov/pubmed/36856068
http://dx.doi.org/10.15252/msb.202211127
work_keys_str_mv AT qiaolingxia acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT sinhasaptarshi acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT abdelhafeezamerali acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT loichung acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT middekrishnak acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT ngotony acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT aznarnicolas acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT lopezsanchezinmaculada acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT guptavijay acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT farquharmarilyng acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT rangamanipadmini acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT ghoshpradipta acircuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT qiaolingxia circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT sinhasaptarshi circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT abdelhafeezamerali circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT loichung circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT middekrishnak circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT ngotony circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT aznarnicolas circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT lopezsanchezinmaculada circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT guptavijay circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT farquharmarilyng circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT rangamanipadmini circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells
AT ghoshpradipta circuitforsecretioncoupledcellularautonomyinmulticellulareukaryoticcells