Diseases caused by mutations in the Na+/K+ pump α1 gene ATP1A1
Elisa D Biondo1, Kerri Spontarelli1, Giovanna Ababioh1
1Department of Cell Physiology and Molecular Biophysics, Center for Membrane Protein Research, Texas Tech University Health Sciences Center, Lubbock, Texas.
Insights
Mutations in the Na+/K+ pump alpha1 subunit gene (ATP1A1) cause diverse diseases. Research explores why mutations affect specific systems, proposing new treatment strategies.
Area of Science:
- Biochemistry
- Genetics
- Cell Biology
Background:
- The Na+/K+ pump (sodium-potassium adenosine triphosphatase) is crucial for human cell survival, maintaining electrochemical gradients via ATP hydrolysis.
- Mutations in genes encoding the Na+/K+ pump's catalytic alpha subunit cause numerous dominant diseases, underscoring its critical role.
- The ATP1A1 gene encodes the ubiquitously expressed alpha1 isoform, and its missense mutations are linked to various human disorders.
Purpose of the Study:
- To review literature on disorders caused by missense mutations in ATP1A1.
- To focus on commonalities and specificities of mutation effects across different diseases.
- To propose hypotheses explaining tissue-specific disease manifestation and suggest future research directions.
Main Methods:
- Literature review of ATP1A1 mutations and associated disorders.
- Analysis of functional effects of missense mutations.
- Hypothesis generation for disease specificity and future research approaches.
Main Results:
- ATP1A1 mutations are associated with primary aldosteronism, Charcot-Marie-Tooth disease, complex spastic paraplegia, and hypomagnesemia with seizures and cognitive delay.
- Identified common functional effects of mutations, alongside unique characteristics leading to system-specific pathologies.
- Somatic mutations in adrenal adenomas increase aldosterone without systemic compromise, while germline mutations present complex disease patterns.
Conclusions:
- Understanding ATP1A1 mutation mechanisms is key to explaining tissue-specific disease.
- Future research combining heterologous expression, patient-derived cells, and gene editing will drive novel, patient-specific treatments.
- Further investigation is needed to elucidate the precise mechanisms behind varied clinical presentations of ATP1A1-related disorders.
Abstract:
Human cell survival requires function of the Na+/K+ pump; the heteromeric protein that hydrolyzes ATP to extrude Na+ and import K+ across the plasmalemma, thereby building and maintaining these ions' electrochemical gradients. Numerous dominant diseases caused by mutations in genes encoding for Na+/K+ pump catalytic (α) subunit isoforms highlight the importance of this protein. Here, we review literature describing disorders caused by missense mutations in ATP1A1, the gene encoding the ubiquitously expressed α1 isoform of the Na+/K+ pump. These various maladies include primary aldosteronism with secondary hypertension, an endocrine syndrome, Charcot-Marie-Tooth disease, a peripheral neuropathy, complex spastic paraplegia, another neuromuscular disorder, as well as hypomagnesemia accompanied by seizures and cognitive delay, a condition affecting the renal and central nervous systems. This article focuses on observed commonalities among these mutations' functional effects, as well as on the special characteristics that enable each particular mutation to exclusively affect a certain system, without affecting others. In this respect, it is clear how somatic mutations localized to adrenal adenomas increase aldosterone production without compromising other systems. However, it remains largely unknown how and why some but not all de novo germline or familial mutations (where the mutant must be expressed in numerous tissues) produce a specific disease and not the other diseases. We propose hypotheses to explain this observation and the approaches that we think will drive future research on these debilitating disorders to develop novel patient-specific treatments by combining the use of heterologous protein-expression systems, patient-derived pluripotent cells, and gene-edited cell and mouse models.
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