Literature DB >> 33673574

Mitochondrial Transfer Improves Cardiomyocyte Bioenergetics and Viability in Male Rats Exposed to Pregestational Diabetes.

Eli J Louwagie1,2, Tricia D Larsen2, Angela L Wachal2, Tyler C T Gandy2, Michelle L Baack1,2,3.   

Abstract

Offspring born to diabetic or obese mothers have a higher lifetime risk of heart disease. Previously, we found that rat offspring exposed to late-gestational diabetes mellitus (LGDM) and maternal high-fat (HF) diet develop mitochondrial dysfunction, impaired cardiomyocyte bioenergetics, and cardiac dysfunction at birth and again during aging. Here, we compared echocardiography, cardiomyocyte bioenergetics, oxidative damage, and mitochondria-mediated cell death among control, pregestational diabetes mellitus (PGDM)-exposed, HF-diet-exposed, and combination-exposed newborn offspring. We hypothesized that PGDM exposure, similar to LGDM, causes mitochondrial dysfunction to play a central, pathogenic role in neonatal cardiomyopathy. We found that PGDM-exposed offspring, similar to LGDM-exposed offspring, have cardiac dysfunction at birth, but their isolated cardiomyocytes have seemingly less bioenergetics impairment. This finding was due to confounding by impaired viability related to poorer ATP generation, more lipid peroxidation, and faster apoptosis under metabolic stress. To mechanistically isolate and test the role of mitochondria, we transferred mitochondria from normal rat myocardium to control and exposed neonatal rat cardiomyocytes. As expected, transfer provides a respiratory boost to cardiomyocytes from all groups. They also reduce apoptosis in PGDM-exposed males, but not in females. Findings highlight sex-specific differences in mitochondria-mediated mechanisms of developmentally programmed heart disease and underscore potential caveats of therapeutic mitochondrial transfer.

Entities:  

Keywords:  developmentally programmed heart disease; diabetic pregnancy; mitochondria; mitochondrial transfer

Mesh:

Year:  2021        PMID: 33673574      PMCID: PMC7956857          DOI: 10.3390/ijms22052382

Source DB:  PubMed          Journal:  Int J Mol Sci        ISSN: 1422-0067            Impact factor:   5.923


  57 in total

1.  Mitochondria Do Not Survive Calcium Overload During Transplantation.

Authors:  Edoardo Bertero; Brian O'Rourke; Christoph Maack
Journal:  Circ Res       Date:  2020-02-06       Impact factor: 17.367

Review 2.  Mitochondria: a central target for sex differences in pathologies.

Authors:  Renée Ventura-Clapier; Maryline Moulin; Jérôme Piquereau; Christophe Lemaire; Mathias Mericskay; Vladimir Veksler; Anne Garnier
Journal:  Clin Sci (Lond)       Date:  2017-05-01       Impact factor: 6.124

3.  Mitochondrial Transfer Ameliorates Cognitive Deficits, Neuronal Loss, and Gliosis in Alzheimer's Disease Mice.

Authors:  Keren Nitzan; Sandrine Benhamron; Michael Valitsky; Eyal E Kesner; Michal Lichtenstein; Ayal Ben-Zvi; Ezra Ella; Yehudit Segalstein; Ann Saada; Haya Lorberboum-Galski; Hanna Rosenmann
Journal:  J Alzheimers Dis       Date:  2019       Impact factor: 4.472

Review 4.  Mitochondrial Function, Biology, and Role in Disease: A Scientific Statement From the American Heart Association.

Authors:  Elizabeth Murphy; Hossein Ardehali; Robert S Balaban; Fabio DiLisa; Gerald W Dorn; Richard N Kitsis; Kinya Otsu; Peipei Ping; Rosario Rizzuto; Michael N Sack; Douglas Wallace; Richard J Youle
Journal:  Circ Res       Date:  2016-04-28       Impact factor: 17.367

Review 5.  How mitochondria produce reactive oxygen species.

Authors:  Michael P Murphy
Journal:  Biochem J       Date:  2009-01-01       Impact factor: 3.857

6.  A maternal high-fat, high-sucrose diet induces transgenerational cardiac mitochondrial dysfunction independently of maternal mitochondrial inheritance.

Authors:  Jeremie L A Ferey; Anna L Boudoures; Michaela Reid; Andrea Drury; Suzanne Scheaffer; Zeel Modi; Attila Kovacs; Terri Pietka; Brian J DeBosch; Michael D Thompson; Abhinav Diwan; Kelle H Moley
Journal:  Am J Physiol Heart Circ Physiol       Date:  2019-03-22       Impact factor: 4.733

7.  Prenatal Exposure to a Maternal High-Fat Diet Affects Histone Modification of Cardiometabolic Genes in Newborn Rats.

Authors:  Bijaya Upadhyaya; Tricia Larsen; Shivon Barwari; Eli J Louwagie; Michelle L Baack; Moul Dey
Journal:  Nutrients       Date:  2017-04-20       Impact factor: 5.717

8.  Sex-specific differences in mitochondria biogenesis, morphology, respiratory function, and ROS homeostasis in young mouse heart and brain.

Authors:  Abdel Rahman M Khalifa; Engy A Abdel-Rahman; Ali M Mahmoud; Mohamed H Ali; Maha Noureldin; Saber H Saber; Mahmoud Mohsen; Sameh S Ali
Journal:  Physiol Rep       Date:  2017-03

9.  Consequences of a Maternal High-Fat Diet and Late Gestation Diabetes on the Developing Rat Lung.

Authors:  Michelle L Baack; Benjamin J Forred; Tricia D Larsen; Danielle N Jensen; Angela L Wachal; Muhammad Ali Khan; Peter F Vitiello
Journal:  PLoS One       Date:  2016-08-12       Impact factor: 3.240

Review 10.  Crosstalk between Mitochondria and Cytoskeleton in Cardiac Cells.

Authors:  Andrey V Kuznetsov; Sabzali Javadov; Michael Grimm; Raimund Margreiter; Michael J Ausserlechner; Judith Hagenbuchner
Journal:  Cells       Date:  2020-01-16       Impact factor: 6.600

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  3 in total

Review 1.  Mitochondrial transfer/transplantation: an emerging therapeutic approach for multiple diseases.

Authors:  Zonghan Liu; Yi Sun; Zhengtang Qi; Lu Cao; Shuzhe Ding
Journal:  Cell Biosci       Date:  2022-05-19       Impact factor: 9.584

Review 2.  Mitochondrial Transfer in Cardiovascular Disease: From Mechanisms to Therapeutic Implications.

Authors:  Jun Chen; Jinjie Zhong; Lin-Lin Wang; Ying-Ying Chen
Journal:  Front Cardiovasc Med       Date:  2021-11-26

Review 3.  The Role of Mitochondrial Abnormalities in Diabetic Cardiomyopathy.

Authors:  Siarhei A Dabravolski; Nikolay K Sadykhov; Andrey G Kartuesov; Evgeny E Borisov; Vasily N Sukhorukov; Alexander N Orekhov
Journal:  Int J Mol Sci       Date:  2022-07-16       Impact factor: 6.208

  3 in total

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