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Calcium Signaling in Vertebrate Development and Its Role in Disease
Sudip Paudel1, Regan Sindelar2, Margaret Saha3
1College of William and Mary, Williamsburg, VA 23187, USA. spaudel@email.wm.edu.
Abstract:
Accumulating evidence over the past three decades suggests that altered calcium signaling during development may be a major driving force for adult pathophysiological events. Well over a hundred human genes encode proteins that are specifically dedicated to calcium homeostasis and calcium signaling, and the majority of these are expressed during embryonic development. Recent advances in molecular techniques have identified impaired calcium signaling during development due to either mutations or dysregulation of these proteins. This impaired signaling has been implicated in various human diseases ranging from cardiac malformations to epilepsy. Although the molecular basis of these and other diseases have been well studied in adult systems, the potential developmental origins of such diseases are less well characterized. In this review, we will discuss the recent evidence that examines different patterns of calcium activity during early development, as well as potential medical conditions associated with its dysregulation. Studies performed using various model organisms, including zebrafish, Xenopus, and mouse, have underscored the critical role of calcium activity in infertility, abortive pregnancy, developmental defects, and a range of diseases which manifest later in life. Understanding the underlying mechanisms by which calcium regulates these diverse developmental processes remains a challenge; however, this knowledge will potentially enable calcium signaling to be used as a therapeutic target in regenerative and personalized medicine.
Insights
Altered calcium signaling during development can lead to adult diseases. Understanding these early developmental disruptions is key for future regenerative and personalized medicine therapies targeting calcium pathways.
Area of Science:
- Developmental Biology
- Molecular Medicine
- Cellular Physiology
Background:
- Calcium signaling is crucial for embryonic development, with many genes dedicated to its regulation.
- Impaired calcium signaling during development is linked to various congenital and adult-onset diseases.
- The developmental origins of many calcium-related disorders are not well understood.
Purpose of the Study:
- To review recent evidence on calcium activity patterns during early development.
- To explore potential medical conditions associated with calcium signaling dysregulation.
- To highlight the importance of understanding calcium's role in developmental processes.
Main Methods:
- Review of studies using model organisms (zebrafish, Xenopus, mouse).
- Analysis of molecular techniques identifying impaired calcium signaling.
- Examination of evidence linking developmental calcium activity to disease.
Main Results:
- Altered calcium signaling during development is implicated in infertility, pregnancy loss, and birth defects.
- Dysregulation of calcium homeostasis proteins during development can lead to diseases manifesting later in life.
- Model organisms demonstrate critical roles for calcium in diverse developmental outcomes.
Conclusions:
- Developmental calcium signaling is a critical determinant of long-term health.
- Further research into calcium's regulatory mechanisms is needed.
- Targeting calcium signaling pathways offers potential for regenerative and personalized medicine.
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