Caloric restriction, Sirtuins, and cardiovascular diseases

被引:4
作者
Wei, Ziyu [1 ]
Yang, Bo [1 ]
Wang, Huiyu [1 ]
Lv, Shuangjie [1 ]
Chen, Houzao [1 ]
Liu, Depei [1 ]
机构
[1] Chinese Acad Med Sci & Peking Union Med Coll, Inst Basic Med Sci, Dept Biochem & Mol Biol, State Key Lab Common Mech Res Major Dis, Beijing 100005, Peoples R China
基金
中国国家自然科学基金;
关键词
Caloric restriction; Sirtuins; Cardiovascular diseases; Healthy lifestyle; Dietary; HIGH-FAT DIET; LIFE-SPAN; OXIDATIVE STRESS; SKELETAL-MUSCLE; ADIPOSE-TISSUE; CARBON-MONOXIDE; CELL-SURVIVAL; NITRIC-OXIDE; SIRT1; EXPRESSION;
D O I
10.1097/CM9.0000000000003056
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Caloric restriction (CR) is a well-established dietary intervention known to extend healthy lifespan and exert positive effects on aging-related diseases, including cardiovascular conditions. Sirtuins, a family of nicotinamide adenine dinucleotide (NAD+)-dependent histone deacetylases, have emerged as key regulators of cellular metabolism, stress responses, and the aging process, serving as energy status sensors in response to CR. However, the mechanism through which CR regulates Sirtuin function to ameliorate cardiovascular disease remains unclear. This review not only provided an overview of recent research investigating the interplay between Sirtuins and CR, specifically focusing on their potential implications for cardiovascular health, but also provided a comprehensive summary of the benefits of CR for the cardiovascular system mediated directly via Sirtuins. CR has also been shown to have considerable impact on specific metabolic organs, leading to the production of small molecules that enter systemic circulation and subsequently regulate Sirtuin activity within the cardiovascular system. The direct and indirect effects of CR offer a potential mechanism for Sirtuin modulation and subsequent cardiovascular protection. Understanding the interplay between CR and Sirtuins will provide new insights for the development of interventions to prevent and treat cardiovascular diseases.
引用
收藏
页码:921 / 935
页数:15
相关论文
共 123 条
  • [1] Non-Coding RNA Molecules Connect Calorie Restriction and Lifespan
    Abraham, Karan J.
    Ostrowski, Lauren A.
    Mekhail, Karim
    [J]. JOURNAL OF MOLECULAR BIOLOGY, 2017, 429 (21) : 3196 - 3214
  • [2] Context-Dependent Roles for SIRT2 and SIRT3 in Tumor Development Upon Calorie Restriction or High Fat Diet
    Ahmed, Mohamed A.
    O'Callaghan, Carol
    Chang, Elliot D.
    Jiang, Haiyan
    Vassilopoulos, Athanassios
    [J]. FRONTIERS IN ONCOLOGY, 2020, 9
  • [3] The effect of caloric restriction and fasting on cancer
    Alidadi, Mona
    Banach, Maciej
    Guest, Paul C.
    Bo, Simona
    Jamialahmadi, Tannaz
    Sahebkar, Amirhossein
    [J]. SEMINARS IN CANCER BIOLOGY, 2021, 73 : 30 - 44
  • [4] Mitochondrial and metabolic dysfunction in ageing and age-related diseases
    Amorim, Joao A.
    Coppotelli, Giuseppe
    Rolo, Anabela P.
    Palmeira, Carlos M.
    Ross, Jaime M.
    Sinclair, David A.
    [J]. NATURE REVIEWS ENDOCRINOLOGY, 2022, 18 (04) : 243 - 258
  • [5] Caloric restriction reverses left ventricular hypertrophy through the regulation of cardiac iron homeostasis in impaired leptin signaling mice
    An, Hyeong Seok
    Lee, Jong Youl
    Choi, Eun Bee
    Jeong, Eun Ae
    Shin, Hyun Joo
    Kim, Kyung Eun
    Park, Kyung-Ah
    Jin, Zhen
    Lee, Jung Eun
    Koh, Jin Sin
    Kwak, Woori
    Kim, Won-Ho
    Roh, Gu Seob
    [J]. SCIENTIFIC REPORTS, 2020, 10 (01)
  • [6] Sirt7 Contributes to Myocardial Tissue Repair by Maintaining Transforming Growth Factor-β Signaling Pathway
    Araki, Satoshi
    Izumiya, Yasuhiro
    Rokutanda, Taku
    Ianni, Alessandro
    Hanatani, Shinsuke
    Kimura, Yuichi
    Onoue, Yoshiro
    Senokuchi, Takafumi
    Yoshizawa, Tatsuya
    Yasuda, Osamu
    Koitabashi, Norimichi
    Kurabayashi, Masahiko
    Braun, Thomas
    Bober, Eva
    Yamagata, Kazuya
    Ogawa, Hisao
    [J]. CIRCULATION, 2015, 132 (12) : 1081 - 1093
  • [7] Calorie restriction changes lipidomic profiles and maintains mitochondrial function and redox balance during isoproterenol-induced cardiac hypertrophy
    Barbosa David, Cicera Edna
    Brito Lucas, Aline Maria
    Oliveira Cunha, Pedro Lourenzo
    Ponte Viana, Yuana Ivia
    Yoshinaga, Marcos Yukio
    Miyamoto, Sayuri
    Chaves Filho, Adriano Brito
    Nunes Varela, Anna Lidia
    Kowaltowski, Alicia Juliana
    Facundo, Heberty Tarso
    [J]. JOURNAL OF PHYSIOLOGY AND BIOCHEMISTRY, 2022, 78 (01) : 283 - 294
  • [8] SIRT1 transgenic mice show phenotypes resembling calorie restriction
    Bordone, Laura
    Cohen, Dena
    Robinson, Ashley
    Motta, Maria Carla
    van Veen, Ed
    Czopik, Agnieszka
    Steele, Andrew D.
    Crowe, Hayley
    Marmor, Stephen
    Luo, Jianyuan
    Gu, Wei
    Guarente, Leonard
    [J]. AGING CELL, 2007, 6 (06) : 759 - 767
  • [9] The NAD+ Precursor Nicotinamide Riboside Enhances Oxidative Metabolism and Protects against High-Fat Diet-Induced Obesity
    Canto, Caries
    Houtkooper, Riekelt H.
    Pirinen, Eija
    Youn, Dou Y.
    Oosterveer, Maaike H.
    Cen, Yana
    Fernandez-Marcos, Pablo J.
    Yamamoto, Hiroyasu
    Andreux, Penelope A.
    Cettour-Rose, Philippe
    Gademann, Karl
    Rinsch, Chris
    Schoonjans, Kristina
    Sauve, Anthony A.
    Auwerx, Johan
    [J]. CELL METABOLISM, 2012, 15 (06) : 838 - 847
  • [10] Short-Term Calorie Restriction Enhances Skeletal Muscle Stem Cell Function
    Cerletti, Massimiliano
    Jang, Young C.
    Finley, Lydia W. S.
    Haigis, Marcia C.
    Wagers, Amy J.
    [J]. CELL STEM CELL, 2012, 10 (05) : 515 - 519