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      Isolated Mitochondrial Preparations and In organello Assays: A Powerful and Relevant Ex vivo Tool for Assessment of Brain (Patho)physiology

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          Abstract

          Mitochondria regulate multiple aspects of neuronal development, physiology, plasticity, and pathology through their regulatory roles in bioenergetic, calcium, redox, and cell survival/death signalling. While several reviews have addressed these different aspects, a comprehensive discussion focussing on the relevance of isolated brain mitochondria and their utilities in neuroscience research has been lacking. This is relevant because the employment of isolated mitochondria rather than their in situ functional evaluation, offers definitive evidence of organelle-specificity, negating the interference from extra mitochondrial cellular factors/signals. This mini-review was designed primarily to explore the commonly employed in organello analytical assays for the assessment of mitochondrial physiology and its dysfunction, with a particular focus on neuroscience research. The authors briefly discuss the methodologies for biochemical isolation of mitochondria, their quality assessment, and cryopreservation. Further, the review attempts to accumulate the key biochemical protocols for in organello assessment of a multitude of mitochondrial functions critical for neurophysiology, including assays for bioenergetic activity, calcium and redox homeostasis, and mitochondrial protein translation. The purpose of this review is not to examine each and every method or study related to the functional assessment of isolated brain mitochondria, but rather to assemble the commonly used protocols of in organello mitochondrial research in a single publication. The hope is that this review will provide a suitable platform aiding neuroscientists to choose and apply the required protocols and tools to address their particular mechanistic, diagnostic, or therapeutic question dealing within the confines of the research area of mitochondrial patho-physiology in the neuronal perspective.

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          Most cited references190

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            Mitochondrial membrane potential.

            The mitochondrial membrane potential (ΔΨm) generated by proton pumps (Complexes I, III and IV) is an essential component in the process of energy storage during oxidative phosphorylation. Together with the proton gradient (ΔpH), ΔΨm forms the transmembrane potential of hydrogen ions which is harnessed to make ATP. The levels of ΔΨm and ATP in the cell are kept relatively stable although there are limited fluctuations of both these factors that can occur reflecting normal physiological activity. However, sustained changes in both factors may be deleterious. A long-lasting drop or rise of ΔΨm vs normal levels may induce unwanted loss of cell viability and be a cause of various pathologies. Among other factors, ΔΨm plays a key role in mitochondrial homeostasis through selective elimination of dysfunctional mitochondria. It is also a driving force for transport of ions (other than H+) and proteins which are necessary for healthy mitochondrial functioning. We propose additional potential mechanisms for which ΔΨm is essential for maintenance of cellular health and viability and provide recommendations how to accurately measure ΔΨm in a cell and discuss potential sources of artifacts.
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              A simple method for clinical assay of superoxide dismutase.

              This assay for superoxide dismutase (SOD, EC 1.15.1.1) activity involves inhibition of nitroblue tetrazolium reduction, with xanthine-xanthine oxidase used as a superoxide generator. By using a reaction terminator, we can determine 40 samples within 55 min. One unit of activity of pure bovine liver Cu,ZnSOD and chicken liver MnSOD was expressed by 30 ng and 500 ng of protein, respectively. The mean concentrations of Cu,ZnSOD as measured by this method in blood from normal adults were 242 (SEM 4) mg/L in erythrocytes, 548 (SEM 20) micrograms/L in serum, and 173 (SEM 11) micrograms/L in plasma. The Cu,ZnSOD concentrations in serum and plasma of patients with cancer of the large intestine tended to be less and greater than these values, respectively, but not statistically significantly so.
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                Author and article information

                Journal
                Curr Neuropharmacol
                Curr Neuropharmacol
                CN
                Current Neuropharmacology
                Bentham Science Publishers
                1570-159X
                1875-6190
                12 May 2023
                12 May 2023
                : 21
                : 6
                : 1433-1449
                Affiliations
                [1 ]Department of Biotechnology, School of Bio Sciences and Technology (SBST), Vellore Institute of Technology, Vellore , 632014, , India ;
                [2 ]Medical Laboratory Technology Department, College of Applied Medical Sciences, Jazan University, Jazan , 45142, , Saudi Arabia ;
                [3 ]deptDepartment of Medical Laboratory Sciences, College of Health Sciences, and Sharjah Institute for Medical Research , University of Sharjah , Sharjah, , 27272 , United Arab Emirates;
                [4 ]Research and Scientific Studies Unit, College of Nursing and Allied Health Sciences, Jazan University, Jazan , 45142, , Saudi Arabia ;
                [5 ]deptGilbert and Rose-Marie Chagoury School of Medicine , Lebanese American University , Beirut, , Lebanon;
                [6 ]deptCentre of Medical and Bio-Allied Health Sciences Research , Ajman University , Ajman, , United Arab Emirates
                Author notes
                [* ]Address correspondence to these authors at the Department of Biotechnology, School of Bio Sciences and Technology (SBST), Vellore Institute of Technology, Vellore, 632014, India; E-mail: faraz.ahmad@ 123456vit.ac.in ; and Research and Scientific Studies Unit, College of Nursing and Allied Health Sciences, Jazan University, Jazan, 45142, Saudi Arabia; E-mail: shafiul.haque@ 123456hotmail.com
                Article
                CN-21-1433
                10.2174/1570159X21666230303123555
                10324330
                36872352
                ab29b984-b54b-450f-b127-e48b89985941
                © 2023 Bentham Science Publishers

                This is an open access article published under CC BY 4.0 https://creativecommons.org/licenses/by/4.0/legalcode)

                History
                : 16 May 2022
                : 30 October 2022
                : 29 December 2022
                Categories
                Medicine, Neurology, Pharmacology, Neuroscience

                Pharmacology & Pharmaceutical medicine
                intrasynaptic mitochondria,density gradient centrifugation,mitochondrial membrane potential (mmp),electron transport chain (etc),calcium capacitance,reactive oxygen species (ros),glutathione (gsh),trolox equivalent antioxidant capacity (teac)

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