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1.
Mol Cell ; 84(7): 1321-1337.e11, 2024 Apr 04.
Article in English | MEDLINE | ID: mdl-38513662

ABSTRACT

Intracellular Mg2+ (iMg2+) is bound with phosphometabolites, nucleic acids, and proteins in eukaryotes. Little is known about the intracellular compartmentalization and molecular details of Mg2+ transport into/from cellular organelles such as the endoplasmic reticulum (ER). We found that the ER is a major iMg2+ compartment refilled by a largely uncharacterized ER-localized protein, TMEM94. Conventional and AlphaFold2 predictions suggest that ERMA (TMEM94) is a multi-pass transmembrane protein with large cytosolic headpiece actuator, nucleotide, and phosphorylation domains, analogous to P-type ATPases. However, ERMA uniquely combines a P-type ATPase domain and a GMN motif for ERMg2+ uptake. Experiments reveal that a tyrosine residue is crucial for Mg2+ binding and activity in a mechanism conserved in both prokaryotic (mgtB and mgtA) and eukaryotic Mg2+ ATPases. Cardiac dysfunction by haploinsufficiency, abnormal Ca2+ cycling in mouse Erma+/- cardiomyocytes, and ERMA mRNA silencing in human iPSC-cardiomyocytes collectively define ERMA as an essential component of ERMg2+ uptake in eukaryotes.


Subject(s)
Adenosine Triphosphatases , P-type ATPases , Animals , Mice , Humans , Adenosine Triphosphatases/metabolism , Membrane Transport Proteins/metabolism , Endoplasmic Reticulum/genetics , Endoplasmic Reticulum/metabolism , Biological Transport , P-type ATPases/metabolism , Calcium/metabolism , Sarcoplasmic Reticulum Calcium-Transporting ATPases
2.
Cell Rep ; 42(3): 112155, 2023 03 28.
Article in English | MEDLINE | ID: mdl-36857182

ABSTRACT

The most abundant cellular divalent cations, Mg2+ (mM) and Ca2+ (nM-µM), antagonistically regulate divergent metabolic pathways with several orders of magnitude affinity preference, but the physiological significance of this competition remains elusive. In mice consuming a Western diet, genetic ablation of the mitochondrial Mg2+ channel Mrs2 prevents weight gain, enhances mitochondrial activity, decreases fat accumulation in the liver, and causes prominent browning of white adipose. Mrs2 deficiency restrains citrate efflux from the mitochondria, making it unavailable to support de novo lipogenesis. As citrate is an endogenous Mg2+ chelator, this may represent an adaptive response to a perceived deficit of the cation. Transcriptional profiling of liver and white adipose reveals higher expression of genes involved in glycolysis, ß-oxidation, thermogenesis, and HIF-1α-targets, in Mrs2-/- mice that are further enhanced under Western-diet-associated metabolic stress. Thus, lowering mMg2+ promotes metabolism and dampens diet-induced obesity and metabolic syndrome.


Subject(s)
Adipose Tissue, Brown , Energy Metabolism , Animals , Mice , Adipose Tissue, Brown/metabolism , Adipose Tissue, White/metabolism , Cation Transport Proteins , Diet , Diet, High-Fat , Energy Metabolism/genetics , Mitochondria/metabolism , Mitochondrial Proteins , Obesity/metabolism , Thermogenesis/genetics
3.
J Vis Exp ; (148)2019 06 02.
Article in English | MEDLINE | ID: mdl-31205305

ABSTRACT

Peripheral vascular disease is a widespread clinical problem that affects millions of patients worldwide. A major consequence of peripheral vascular disease is the development of ischemia. In severe cases, patients can develop critical limb ischemia in which they experience constant pain and an increased risk of limb amputation. Current therapies for peripheral ischemia include bypass surgery or percutaneous interventions such as angioplasty with stenting or atherectomy to restore blood flow. However, these treatments often fail to the continued progression of vascular disease or restenosis or are contraindicated due to the overall poor health of the patient. A promising potential approach to treat peripheral ischemia involves the induction of therapeutic neovascularization to allow the patient to develop collateral vasculature. This newly formed network alleviates peripheral ischemia by restoring perfusion to the affected area. The most frequently employed preclinical model for peripheral ischemia utilizes the creation of hind limb ischemia in healthy rabbits through femoral artery ligation. In the past, however, there has been a strong disconnect between the success of preclinical studies and the failure of clinical trials regarding treatments for peripheral ischemia. Healthy animals typically have robust vascular regeneration in response to surgically induced ischemia, in contrast to the reduced vascularity and regeneration in patients with chronic peripheral ischemia. Here, we describe an optimized animal model for peripheral ischemia in rabbits that includes hyperlipidemia and diabetes. This model has reduced collateral formation and blood pressure recovery in comparison to a model with a higher cholesterol diet. Thus, the model may provide better correlation with human patients with compromised angiogenesis from the common co-morbidities that accompany peripheral vascular disease.


Subject(s)
Diabetes Mellitus, Experimental/complications , Disease Models, Animal , Hindlimb/pathology , Hyperlipidemias/complications , Ischemia/pathology , Neovascularization, Pathologic/pathology , Angioplasty , Animals , Femoral Artery/surgery , Hindlimb/blood supply , Ischemia/etiology , Male , Neovascularization, Pathologic/etiology , Rabbits
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