Cargando…

A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy

Starvation‐dependent differential stress sensitization effect between normal and tumor cells provides a potentially promising strategy to amplify chemotherapy effects and reduce side effects. However, the conventional starvation approaches such as glucose oxidase (Gox)‐induced glucose depletion and...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Xianglong, Jiang, Cong, Wang, Qinghua, Yang, Shaobo, Cao, Yuanyuan, Hao, Ji‐Na, Niu, Dechao, Chen, Yan, Han, Bo, Jia, Xin, Zhang, Peng, Li, Yongsheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8922125/
https://www.ncbi.nlm.nih.gov/pubmed/35038243
http://dx.doi.org/10.1002/advs.202104671
_version_ 1784669464802885632
author Li, Xianglong
Jiang, Cong
Wang, Qinghua
Yang, Shaobo
Cao, Yuanyuan
Hao, Ji‐Na
Niu, Dechao
Chen, Yan
Han, Bo
Jia, Xin
Zhang, Peng
Li, Yongsheng
author_facet Li, Xianglong
Jiang, Cong
Wang, Qinghua
Yang, Shaobo
Cao, Yuanyuan
Hao, Ji‐Na
Niu, Dechao
Chen, Yan
Han, Bo
Jia, Xin
Zhang, Peng
Li, Yongsheng
author_sort Li, Xianglong
collection PubMed
description Starvation‐dependent differential stress sensitization effect between normal and tumor cells provides a potentially promising strategy to amplify chemotherapy effects and reduce side effects. However, the conventional starvation approaches such as glucose oxidase (Gox)‐induced glucose depletion and nanomedicine‐enabled vascular embolism usually suffer from aggravated tumor hypoxia, systemic toxicity, and unpredictable metabolic syndrome. Herein, a novel “valve‐closing” starvation strategy is developed to amplify the chemotherapy effects via closing the “valve” of glucose transported into tumor cells, which is accomplished by a glucose transporters 1 (GLUT1, valve of glucose uptake) inhibitor (Genistein, Gen) and chemotherapeutic agent (Curcumin, Cur) coloaded hybrid organosilica‐micelles nanomedicine (designated as (Gen + Cur)@FOS) with controllable stability. In vitro and in vivo results demonstrate that (Gen + Cur)@FOS can effectively reduce glucose/adenosine triphosphate levels in tumor cells by inhibiting GLUT1 expression (i.e., “valve‐closing”) to induce the starvation of tumor cells, thus weakening the resistance of tumor cells to apoptosis caused by chemotherapy, and consequently contributing to the remarkably improved antitumor efficiency and minimized side effects based on the stress sensitization effect mediated by GLUT1 inhibition‐induced starvation. This “valve‐closing” starvation strategy provides a promising paradigm for the development of novel nanotherapeutics with amplified chemotherapy effect.
format Online
Article
Text
id pubmed-8922125
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-89221252022-03-21 A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy Li, Xianglong Jiang, Cong Wang, Qinghua Yang, Shaobo Cao, Yuanyuan Hao, Ji‐Na Niu, Dechao Chen, Yan Han, Bo Jia, Xin Zhang, Peng Li, Yongsheng Adv Sci (Weinh) Research Articles Starvation‐dependent differential stress sensitization effect between normal and tumor cells provides a potentially promising strategy to amplify chemotherapy effects and reduce side effects. However, the conventional starvation approaches such as glucose oxidase (Gox)‐induced glucose depletion and nanomedicine‐enabled vascular embolism usually suffer from aggravated tumor hypoxia, systemic toxicity, and unpredictable metabolic syndrome. Herein, a novel “valve‐closing” starvation strategy is developed to amplify the chemotherapy effects via closing the “valve” of glucose transported into tumor cells, which is accomplished by a glucose transporters 1 (GLUT1, valve of glucose uptake) inhibitor (Genistein, Gen) and chemotherapeutic agent (Curcumin, Cur) coloaded hybrid organosilica‐micelles nanomedicine (designated as (Gen + Cur)@FOS) with controllable stability. In vitro and in vivo results demonstrate that (Gen + Cur)@FOS can effectively reduce glucose/adenosine triphosphate levels in tumor cells by inhibiting GLUT1 expression (i.e., “valve‐closing”) to induce the starvation of tumor cells, thus weakening the resistance of tumor cells to apoptosis caused by chemotherapy, and consequently contributing to the remarkably improved antitumor efficiency and minimized side effects based on the stress sensitization effect mediated by GLUT1 inhibition‐induced starvation. This “valve‐closing” starvation strategy provides a promising paradigm for the development of novel nanotherapeutics with amplified chemotherapy effect. John Wiley and Sons Inc. 2022-01-17 /pmc/articles/PMC8922125/ /pubmed/35038243 http://dx.doi.org/10.1002/advs.202104671 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH 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 Research Articles
Li, Xianglong
Jiang, Cong
Wang, Qinghua
Yang, Shaobo
Cao, Yuanyuan
Hao, Ji‐Na
Niu, Dechao
Chen, Yan
Han, Bo
Jia, Xin
Zhang, Peng
Li, Yongsheng
A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title_full A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title_fullStr A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title_full_unstemmed A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title_short A “Valve‐Closing” Starvation Strategy for Amplification of Tumor‐Specific Chemotherapy
title_sort “valve‐closing” starvation strategy for amplification of tumor‐specific chemotherapy
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8922125/
https://www.ncbi.nlm.nih.gov/pubmed/35038243
http://dx.doi.org/10.1002/advs.202104671
work_keys_str_mv AT lixianglong avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT jiangcong avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT wangqinghua avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT yangshaobo avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT caoyuanyuan avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT haojina avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT niudechao avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT chenyan avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT hanbo avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT jiaxin avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT zhangpeng avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT liyongsheng avalveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT lixianglong valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT jiangcong valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT wangqinghua valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT yangshaobo valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT caoyuanyuan valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT haojina valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT niudechao valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT chenyan valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT hanbo valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT jiaxin valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT zhangpeng valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy
AT liyongsheng valveclosingstarvationstrategyforamplificationoftumorspecificchemotherapy