Curcumin Improves Hippocampal Cell Bioenergetics, Redox and Inflammatory Markers, and Synaptic Proteins, Regulating Mitochondrial Calcium Homeostasis

被引:0
作者
Jara, Claudia [1 ,2 ]
Torres, Angie K. [1 ,2 ,5 ,6 ]
Park-Kang, Han S. [1 ]
Sandoval, Lisette [4 ]
Retamal, Claudio [4 ]
Gonzalez, Alfonso [3 ,4 ]
Ricca, Micaela [2 ,3 ]
Valenzuela, Sebastian [2 ,3 ]
Murphy, Michael P. [7 ]
Inestrosa, Nibaldo C. [5 ,6 ]
Tapia-Rojas, Cheril [1 ,2 ]
机构
[1] Fdn Ciencia & Vida, Ctr Cient & Tecnol Excelencia Ciencia & Vida, Lab Neurobiol Aging, Ave Valle Norte 725, Santiago 8580702, Chile
[2] Univ San Sebastian, Fac Med & Ciencia, Lota 2465, Santiago 7510157, Chile
[3] Fdn Ciencia & Vida, Ctr Cient & Tecnol Excelencia Ciencia & Vida, Ave Valle Norte 725, Santiago 8580702, Chile
[4] Ctr Biol Celular & Biomed CEBICEM, Fac Med & Ciencia, Lota 2465, Santiago 7510157, Chile
[5] Pontificia Univ Catolica Chile, Fac Ciencias Biol, Santiago, Chile
[6] Univ Magallanes, Escuela Med, Ctr Excelencia Biomed Magallanes CEBIMA, Ave Flamencos, Punta Arenas 01364, Chile
[7] Univ Cambridge, Med Res Council, Mitochondrial Biol Unit, Cambridge Biomed Campus, Cambridge, England
关键词
Curcumin; Mitochondria; Hippocampus; MitoQ; PERMEABILITY TRANSITION PORE; FIBRILLARY ACIDIC PROTEIN; TRANSGENIC MOUSE MODEL; FREE-RADICAL THEORY; TARGETED ANTIOXIDANT; OXIDATIVE STRESS; SIGNALING PATHWAY; ATP PRODUCTION; CA2+ CHANNEL; ACTIVATION;
D O I
10.1007/s12640-024-00726-y
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Mitochondria produces energy through oxidative phosphorylation (OXPHOS), maintaining calcium homeostasis, survival/death cell signaling mechanisms, and redox balance. These mitochondrial functions are especially critical for neurons. The hippocampus is crucial for memory formation in the brain, which is a process with high mitochondrial function demand. Loss of hippocampal function in aging is related to neuronal damage, where mitochondrial impairment is critical. Synaptic and mitochondrial dysfunction are early events in aging; both are regulated reciprocally and contribute to age-associated memory loss together. We previously showed that prolonged treatment with Curcumin or Mitoquinone (MitoQ) improves mitochondrial functions in aged mice, exerting similar neuroprotective effects. Curcumin has been described as an anti-inflammatory and antioxidant compound, and MitoQ is a potent antioxidant directly targeting mitochondria; however, whether Curcumin exerts a direct impact on the mitochondria is unclear. In this work, we study whether Curcumin could have a mechanism similar to MitoQ targeting the mitochondria. We utilized hippocampal slices of 4-6-month-old C57BL6 mice to assess the cellular changes induced by acute Curcumin treatment ex-vivo compared to MitoQ. Our results strongly suggest that both compounds improve the synaptic structure, oxidative state, and energy production in the hippocampus. Nevertheless, Curcumin and MitoQ modify mitochondrial function differently; MitoQ improves the mitochondrial bioenergetics state, reducing ROS production and increasing ATP generation. In contrast, Curcumin reduces mitochondrial calcium levels and prevents calcium overload related to mitochondrial swelling. Thus, Curcumin is described as a new regulator of mitochondrial calcium homeostasis and could be used in pathological events involving calcium deregulation and excitotoxicity, such as aging and neurodegenerative diseases.
引用
收藏
页数:21
相关论文
共 154 条
[11]   The free radical theory of aging matures [J].
Beckman, KB ;
Ames, BN .
PHYSIOLOGICAL REVIEWS, 1998, 78 (02) :547-581
[12]   'Pressure-flow'-triggered intracellular Ca2+ transients in rat cardiac myocytes:: possible mechanisms and role of mitochondria [J].
Belmonte, Stephen ;
Morad, Martin .
JOURNAL OF PHYSIOLOGY-LONDON, 2008, 586 (05) :1379-1397
[13]  
Billups B, 2002, J NEUROSCI, V22, P5840
[14]   Curcumin induces glutathione biosynthesis and inhibits NF-κB activation and interleukin-8 release in alveolar epithelial cells:: Mechanism of free radical scavenging activity [J].
Biswas, SK ;
McClure, D ;
Jimenez, LA ;
Megson, IL ;
Rahman, I .
ANTIOXIDANTS & REDOX SIGNALING, 2005, 7 (1-2) :32-41
[15]   The Effect of MitoQ on Aging-Related Biomarkers: A Systematic Review and Meta-Analysis [J].
Braakhuis, Andrea J. ;
Nagulan, Rohith ;
Somerville, Vaughan .
OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2018, 2018
[16]   Blockade of the Formation of Insoluble Ubiquitinated Protein Aggregates by EGCG3"Me in the Alloxan-Induced Diabetic Kidney [J].
Cai, Shuxian ;
Zhong, Yuan ;
Li, Yinhua ;
Huang, Jianan ;
Zhang, Jing ;
Luo, Guoan ;
Liu, Zhonghua .
PLOS ONE, 2013, 8 (09)
[17]   Isolation of Mitochondria From Fresh Mice Lung Tissue [J].
Caldeira, Dayene de Assis Fernandes ;
Oliveira, Dahienne Ferreira de ;
Cavalcanti-de-Albuquerque, Joao Paulo ;
Nascimento, Jose Hamilton Matheus ;
Zin, Walter Araujo ;
Maciel, Leonardo .
FRONTIERS IN PHYSIOLOGY, 2021, 12
[18]   The fateful encounter of mitochondria with calcium: How did it happen? [J].
Carafoli, Ernesto .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2010, 1797 (6-7) :595-606
[19]   Non-canonical function of IRE1α determines mitochondria-associated endoplasmic reticulum composition to control calcium transfer and bioenergetics [J].
Carreras-Sureda, Amado ;
Jana, Fabian ;
Urra, Hery ;
Durand, Sylvere ;
Mortenson, David E. ;
Sagredo, Alfredo ;
Bustos, Galdo ;
Hazari, Younis ;
Ramos-Fernandez, Eva ;
Sassano, Maria L. ;
Pihan, Philippe ;
van Vliet, Alexander R. ;
Gonzalez-Quiroz, Matias ;
Torres, Angie K. ;
Tapia-Rojas, Cheril ;
Kerkhofs, Martijn ;
Vicente, Ruben ;
Kaufman, Randal J. ;
Inestrosa, Nibaldo C. ;
Gonzalez-Billault, Christian ;
Luke Wiseman, R. ;
Agostinis, Patrizia ;
Bultynck, Geert ;
Court, Felipe A. ;
Kroemer, Guido ;
Cesar Cardenas, J. ;
Hetz, Claudio .
NATURE CELL BIOLOGY, 2019, 21 (06) :755-+
[20]   Regulators of synaptic transmission: Roles in the pathogenesis and treatment of epilepsy [J].
Casillas-Espinosa, Pablo M. ;
Powell, Kim L. ;
O'Brien, Terence J. .
EPILEPSIA, 2012, 53 :41-58