Cargando…
The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis
Cholesterol levels are an initiating risk factor for atherosclerosis. Many genes play a central role in cholesterol synthesis, including HMGCR, SQLE, HMGCS1, FDFT1, LSS, MVK, PMK, MVD, FDPS, CYP51, TM7SF2, LBR, MSMO1, NSDHL, HSD17B7, DHCR24, EBP, SC5D, DHCR7, IDI1/2. Especially, HMGCR, SQLE, FDFT1,...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Ivyspring International Publisher
2023
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10266072/ https://www.ncbi.nlm.nih.gov/pubmed/37324939 http://dx.doi.org/10.7150/ijbs.84994 |
_version_ | 1785058667810258944 |
---|---|
author | Chen, Wujun Xu, Jiazhen Wu, Yudong Liang, Bing Yan, Mingzhe Sun, Chuandong Wang, Dong Hu, Xiaokun Liu, Li Hu, Wenchao Shao, Yingchun Xing, Dongming |
author_facet | Chen, Wujun Xu, Jiazhen Wu, Yudong Liang, Bing Yan, Mingzhe Sun, Chuandong Wang, Dong Hu, Xiaokun Liu, Li Hu, Wenchao Shao, Yingchun Xing, Dongming |
author_sort | Chen, Wujun |
collection | PubMed |
description | Cholesterol levels are an initiating risk factor for atherosclerosis. Many genes play a central role in cholesterol synthesis, including HMGCR, SQLE, HMGCS1, FDFT1, LSS, MVK, PMK, MVD, FDPS, CYP51, TM7SF2, LBR, MSMO1, NSDHL, HSD17B7, DHCR24, EBP, SC5D, DHCR7, IDI1/2. Especially, HMGCR, SQLE, FDFT1, LSS, FDPS, CYP51, and EBP are promising therapeutic targets for drug development due to many drugs have been approved and entered into clinical research by targeting these genes. However, new targets and drugs still need to be discovered. Interestingly, many small nucleic acid drugs and vaccines were approved for the market, including Inclisiran, Patisiran, Inotersen, Givosiran, Lumasiran, Nusinersen, Volanesorsen, Eteplirsen, Golodirsen, Viltolarsen, Casimersen, Elasomeran, Tozinameran. However, these agents are all linear RNA agents. Circular RNAs (circRNAs) may have longer half-lives, higher stability, lower immunogenicity, lower production costs, and higher delivery efficiency than these agents due to their covalently closed structures. CircRNA agents are developed by several companies, including Orna Therapeutics, Laronde, and CirCode, Therorna. Many studies have shown that circRNAs regulate cholesterol synthesis by regulating HMGCR, SQLE, HMGCS1, ACS, YWHAG, PTEN, DHCR24, SREBP-2, and PMK expression. MiRNAs are essential for circRNA-mediated cholesterol biosynthesis. Notable, the phase II trial for inhibiting miR-122 with nucleic acid drugs has been completed. Suppressing HMGCR, SQLE, and miR-122 with circRNA_ABCA1, circ-PRKCH, circEZH2, circRNA-SCAP, and circFOXO3 are the promising therapeutic target for drug development, specifically the circFOXO3. This review focuses on the role and mechanism of the circRNA/miRNA axis in cholesterol synthesis in the hope of providing knowledge to identify new targets. |
format | Online Article Text |
id | pubmed-10266072 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2023 |
publisher | Ivyspring International Publisher |
record_format | MEDLINE/PubMed |
spelling | pubmed-102660722023-06-15 The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis Chen, Wujun Xu, Jiazhen Wu, Yudong Liang, Bing Yan, Mingzhe Sun, Chuandong Wang, Dong Hu, Xiaokun Liu, Li Hu, Wenchao Shao, Yingchun Xing, Dongming Int J Biol Sci Review Cholesterol levels are an initiating risk factor for atherosclerosis. Many genes play a central role in cholesterol synthesis, including HMGCR, SQLE, HMGCS1, FDFT1, LSS, MVK, PMK, MVD, FDPS, CYP51, TM7SF2, LBR, MSMO1, NSDHL, HSD17B7, DHCR24, EBP, SC5D, DHCR7, IDI1/2. Especially, HMGCR, SQLE, FDFT1, LSS, FDPS, CYP51, and EBP are promising therapeutic targets for drug development due to many drugs have been approved and entered into clinical research by targeting these genes. However, new targets and drugs still need to be discovered. Interestingly, many small nucleic acid drugs and vaccines were approved for the market, including Inclisiran, Patisiran, Inotersen, Givosiran, Lumasiran, Nusinersen, Volanesorsen, Eteplirsen, Golodirsen, Viltolarsen, Casimersen, Elasomeran, Tozinameran. However, these agents are all linear RNA agents. Circular RNAs (circRNAs) may have longer half-lives, higher stability, lower immunogenicity, lower production costs, and higher delivery efficiency than these agents due to their covalently closed structures. CircRNA agents are developed by several companies, including Orna Therapeutics, Laronde, and CirCode, Therorna. Many studies have shown that circRNAs regulate cholesterol synthesis by regulating HMGCR, SQLE, HMGCS1, ACS, YWHAG, PTEN, DHCR24, SREBP-2, and PMK expression. MiRNAs are essential for circRNA-mediated cholesterol biosynthesis. Notable, the phase II trial for inhibiting miR-122 with nucleic acid drugs has been completed. Suppressing HMGCR, SQLE, and miR-122 with circRNA_ABCA1, circ-PRKCH, circEZH2, circRNA-SCAP, and circFOXO3 are the promising therapeutic target for drug development, specifically the circFOXO3. This review focuses on the role and mechanism of the circRNA/miRNA axis in cholesterol synthesis in the hope of providing knowledge to identify new targets. Ivyspring International Publisher 2023-05-29 /pmc/articles/PMC10266072/ /pubmed/37324939 http://dx.doi.org/10.7150/ijbs.84994 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions. |
spellingShingle | Review Chen, Wujun Xu, Jiazhen Wu, Yudong Liang, Bing Yan, Mingzhe Sun, Chuandong Wang, Dong Hu, Xiaokun Liu, Li Hu, Wenchao Shao, Yingchun Xing, Dongming The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title | The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title_full | The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title_fullStr | The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title_full_unstemmed | The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title_short | The potential role and mechanism of circRNA/miRNA axis in cholesterol synthesis |
title_sort | potential role and mechanism of circrna/mirna axis in cholesterol synthesis |
topic | Review |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10266072/ https://www.ncbi.nlm.nih.gov/pubmed/37324939 http://dx.doi.org/10.7150/ijbs.84994 |
work_keys_str_mv | AT chenwujun thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT xujiazhen thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT wuyudong thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT liangbing thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT yanmingzhe thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT sunchuandong thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT wangdong thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT huxiaokun thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT liuli thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT huwenchao thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT shaoyingchun thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT xingdongming thepotentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT chenwujun potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT xujiazhen potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT wuyudong potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT liangbing potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT yanmingzhe potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT sunchuandong potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT wangdong potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT huxiaokun potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT liuli potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT huwenchao potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT shaoyingchun potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis AT xingdongming potentialroleandmechanismofcircrnamirnaaxisincholesterolsynthesis |