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Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization

BACKGROUND AND PURPOSE: Pathological angiogenesis is a major cause of irreversible blindness in individuals with neovascular age‐related macular degeneration (nAMD). Macrophages and microglia (MΦ) contribute to aberrant ocular angiogenesis. However, the role of glucose metabolism of MΦ in nAMD is st...

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Autores principales: Liu, Zhiping, Mao, Xiaoxiao, Yang, Qiuhua, Zhang, Xiaoyu, Xu, Jiean, Ma, Qian, Zhou, Yaqi, Da, Qingen, Cai, Yongfeng, Sopeyin, Anu, Dong, Zheng, Hong, Mei, Caldwell, Ruth B., Sodhi, Akrit, Huo, Yuqing
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/PMC9804921/
https://www.ncbi.nlm.nih.gov/pubmed/35830274
http://dx.doi.org/10.1111/bph.15925
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author Liu, Zhiping
Mao, Xiaoxiao
Yang, Qiuhua
Zhang, Xiaoyu
Xu, Jiean
Ma, Qian
Zhou, Yaqi
Da, Qingen
Cai, Yongfeng
Sopeyin, Anu
Dong, Zheng
Hong, Mei
Caldwell, Ruth B.
Sodhi, Akrit
Huo, Yuqing
author_facet Liu, Zhiping
Mao, Xiaoxiao
Yang, Qiuhua
Zhang, Xiaoyu
Xu, Jiean
Ma, Qian
Zhou, Yaqi
Da, Qingen
Cai, Yongfeng
Sopeyin, Anu
Dong, Zheng
Hong, Mei
Caldwell, Ruth B.
Sodhi, Akrit
Huo, Yuqing
author_sort Liu, Zhiping
collection PubMed
description BACKGROUND AND PURPOSE: Pathological angiogenesis is a major cause of irreversible blindness in individuals with neovascular age‐related macular degeneration (nAMD). Macrophages and microglia (MΦ) contribute to aberrant ocular angiogenesis. However, the role of glucose metabolism of MΦ in nAMD is still undefined. Here, we have investigated the involvement of glycolysis, driven by the kinase/phosphatase PFKFB3, in the development of choroidal neovascularization (CNV). EXPERIMENTAL APPROACH: CNV was induced in mice with laser photocoagulation. Choroid/retinal pigment epithelium (RPE) complexes and MΦ were isolated for analysis by qRT‐PCR, western blot, flow cytometry, immunostaining, metabolic measurements and angiogenesis assays. KEY RESULTS: MΦ accumulated within the CNV of murine nAMD models and expressed high levels of glycolysis‐related enzymes and M1/M2 polarization markers. This phenotype of hyper‐glycolytic and activated MΦ was replicated in bone marrow‐derived macrophages stimulated by necrotic RPE in vitro. Myeloid cell‐specific knockout of PFKFB3, a key glycolytic activator, attenuated pathological neovascularization in laser‐induced CNV, which was associated with decreased expression of MΦ polarization markers and pro‐angiogenic factors, along with decreased sprouting of vessels in choroid/RPE complexes. Mechanistically, necrotic RPE increased PFKFB3‐driven glycolysis in macrophages, leading to activation of HIF‐1α/HIF‐2α and NF‐κB, and subsequent induction of M1/M2 markers and pro‐angiogenic cytokines, finally promoting macrophage reprogramming towards an angiogenic phenotype to facilitate development of CNV. The PFKFB3 inhibitor AZ67 also inhibited activation of HIF‐1α/HIF‐2α and NF‐κB signalling and almost completely prevented laser‐induced CNV in mice. CONCLUSIONS AND IMPLICATIONS: Modulation of PFKFB3‐mediated macrophage glycolysis and activation is a promising strategy for the treatment of nAMD.
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spelling pubmed-98049212023-01-06 Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization Liu, Zhiping Mao, Xiaoxiao Yang, Qiuhua Zhang, Xiaoyu Xu, Jiean Ma, Qian Zhou, Yaqi Da, Qingen Cai, Yongfeng Sopeyin, Anu Dong, Zheng Hong, Mei Caldwell, Ruth B. Sodhi, Akrit Huo, Yuqing Br J Pharmacol Research Articles BACKGROUND AND PURPOSE: Pathological angiogenesis is a major cause of irreversible blindness in individuals with neovascular age‐related macular degeneration (nAMD). Macrophages and microglia (MΦ) contribute to aberrant ocular angiogenesis. However, the role of glucose metabolism of MΦ in nAMD is still undefined. Here, we have investigated the involvement of glycolysis, driven by the kinase/phosphatase PFKFB3, in the development of choroidal neovascularization (CNV). EXPERIMENTAL APPROACH: CNV was induced in mice with laser photocoagulation. Choroid/retinal pigment epithelium (RPE) complexes and MΦ were isolated for analysis by qRT‐PCR, western blot, flow cytometry, immunostaining, metabolic measurements and angiogenesis assays. KEY RESULTS: MΦ accumulated within the CNV of murine nAMD models and expressed high levels of glycolysis‐related enzymes and M1/M2 polarization markers. This phenotype of hyper‐glycolytic and activated MΦ was replicated in bone marrow‐derived macrophages stimulated by necrotic RPE in vitro. Myeloid cell‐specific knockout of PFKFB3, a key glycolytic activator, attenuated pathological neovascularization in laser‐induced CNV, which was associated with decreased expression of MΦ polarization markers and pro‐angiogenic factors, along with decreased sprouting of vessels in choroid/RPE complexes. Mechanistically, necrotic RPE increased PFKFB3‐driven glycolysis in macrophages, leading to activation of HIF‐1α/HIF‐2α and NF‐κB, and subsequent induction of M1/M2 markers and pro‐angiogenic cytokines, finally promoting macrophage reprogramming towards an angiogenic phenotype to facilitate development of CNV. The PFKFB3 inhibitor AZ67 also inhibited activation of HIF‐1α/HIF‐2α and NF‐κB signalling and almost completely prevented laser‐induced CNV in mice. CONCLUSIONS AND IMPLICATIONS: Modulation of PFKFB3‐mediated macrophage glycolysis and activation is a promising strategy for the treatment of nAMD. John Wiley and Sons Inc. 2022-08-09 2022-11 /pmc/articles/PMC9804921/ /pubmed/35830274 http://dx.doi.org/10.1111/bph.15925 Text en © 2022 The Authors. British Journal of Pharmacology published by John Wiley & Sons Ltd on behalf of British Pharmacological Society. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Liu, Zhiping
Mao, Xiaoxiao
Yang, Qiuhua
Zhang, Xiaoyu
Xu, Jiean
Ma, Qian
Zhou, Yaqi
Da, Qingen
Cai, Yongfeng
Sopeyin, Anu
Dong, Zheng
Hong, Mei
Caldwell, Ruth B.
Sodhi, Akrit
Huo, Yuqing
Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title_full Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title_fullStr Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title_full_unstemmed Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title_short Suppression of myeloid PFKFB3‐driven glycolysis protects mice from choroidal neovascularization
title_sort suppression of myeloid pfkfb3‐driven glycolysis protects mice from choroidal neovascularization
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9804921/
https://www.ncbi.nlm.nih.gov/pubmed/35830274
http://dx.doi.org/10.1111/bph.15925
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