Calcium-ATPases: Gene disorders and dysregulation in cancer
1Department of Physiology, The Johns Hopkins University School of Medicine, 725 N. Wolfe Street, Baltimore, MD 21205, USA.
Abstract:
Ca(2+)-ATPases belonging to the superfamily of P-type pumps play an important role in maintaining low, nanomolar cytoplasmic Ca(2+) levels at rest and priming organellar stores, including the endoplasmic reticulum, Golgi, and secretory vesicles with high levels of Ca(2+) for a wide range of signaling functions. In this review, we introduce the distinct subtypes of Ca(2+)-ATPases and their isoforms and splice variants and provide an overview of their specific cellular roles as they relate to genetic disorders and cancer, with a particular emphasis on recent findings on the secretory pathway Ca(2+)-ATPases (SPCA). Mutations in human ATP2A2, ATP2C1 genes, encoding housekeeping isoforms of the endoplasmic reticulum (SERCA2) and secretory pathway (SPCA1) pumps, respectively, confer autosomal dominant disorders of the skin, whereas mutations in other isoforms underlie various muscular, neurological, or developmental disorders. Emerging evidence points to an important function of dysregulated Ca(2+)-ATPase expression in cancers of the colon, lung, and breast where they may serve as markers of differentiation or novel targets for therapeutic intervention. We review the mechanisms underlying the link between calcium homeostasis and cancer and discuss the potential clinical relevance of these observations. This article is part of a Special Issue entitled: Calcium and Cell Fate. Guest Editors: Jacques Haiech, Claus Heizmann, Joachim Krebs, Thierry Capiod and Olivier Mignen.
Insights
Calcium ATPases (Ca2+-ATPases) regulate cellular calcium levels and are crucial for cell signaling. Dysregulation of these pumps is linked to genetic disorders and various cancers, offering potential therapeutic targets.
Area of Science:
- Molecular Biology
- Cellular Physiology
- Biochemistry
Background:
- Calcium ATPases (Ca2+-ATPases) are P-type pumps vital for maintaining cytoplasmic calcium homeostasis.
- They regulate calcium levels in organelles like the endoplasmic reticulum, Golgi, and secretory vesicles, essential for cell signaling.
Purpose of the Study:
- To review Ca2+-ATPase subtypes, isoforms, and splice variants.
- To overview their cellular roles in genetic disorders and cancer.
- To emphasize recent findings on secretory pathway Ca2+-ATPases (SPCA).
Main Methods:
- Literature review of Ca2+-ATPase functions.
- Analysis of genetic mutations linked to disorders.
- Examination of Ca2+-ATPase expression in cancer.
Main Results:
- Mutations in SERCA2 and SPCA1 genes cause skin disorders.
- Other Ca2+-ATPase isoforms are implicated in muscular, neurological, and developmental disorders.
- Altered Ca2+-ATPase expression is observed in colon, lung, and breast cancers, potentially serving as biomarkers or therapeutic targets.
Conclusions:
- Ca2+-ATPases are critical for calcium homeostasis and cellular functions.
- Genetic defects in Ca2+-ATPases lead to various diseases.
- Dysregulated Ca2+-ATPase expression in cancer highlights their clinical relevance.
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