Semaphorin
Semaphorin is a class of secreted and membrane proteins that were originally identified as axon guidance cues involved in the development of the nervous system. They are named for their role in "semaphore-like" signaling, guiding axonal growth cones during neural development. Semaphorins are characterized by a conserved Sema domain, a 500-amino acid long region found in all semaphorins, which is critical for their signaling function. Beyond their initial discovery in the nervous system, semaphorins have been found to play crucial roles in various physiological and pathological processes, including immune regulation, cancer, and cardiovascular development.
Structure and Classification
Semaphorins are divided into eight major classes based on their structure and species distribution. Classes 1 and 2 are found in invertebrates, while classes 3 through 7 are present in vertebrates. Class 8 semaphorins are found in viruses. The defining feature of semaphorins is the Sema domain, but they also contain additional domains that are important for their function, including plexin-semaphorin-integrin (PSI) domains, immunoglobulin-like (Ig) domains, and transmembrane domains, among others.
Function
The primary function of semaphorins is to act as guidance cues for the migrating axons during neural development. They achieve this by interacting with receptors on the surface of axons, such as neuropilins and plexins, to initiate signaling pathways that regulate cytoskeletal dynamics and axon guidance. However, the role of semaphorins extends beyond the nervous system. They are involved in the regulation of immune responses, influencing the activation and migration of various immune cells. In cancer, semaphorins can have both tumor-suppressive and tumor-promoting effects, influencing tumor angiogenesis, metastasis, and the tumor microenvironment. Additionally, semaphorins play a role in the development and function of the cardiovascular system, including angiogenesis and heart development.
Receptors and Signaling
Semaphorins signal primarily through interactions with two families of receptors: neuropilins and plexins. Neuropilins serve as co-receptors for certain semaphorins and facilitate their binding to plexins, which transduce the signal into the cell. The binding of semaphorin to its receptor complex triggers a cascade of intracellular signaling events that can lead to changes in cell morphology, migration, and adhesion. The specific outcomes of semaphorin signaling depend on the cellular context, the type of semaphorin, and the receptor complex involved.
Clinical Significance
Given their diverse roles in development and disease, semaphorins and their receptors have emerged as potential therapeutic targets. In cancer, strategies to modulate semaphorin signaling are being explored to inhibit tumor growth and metastasis. In autoimmune diseases and transplantation, targeting semaphorin interactions with immune cells is a potential strategy for modulating immune responses. Additionally, the role of semaphorins in neural regeneration and repair is of interest for developing treatments for neurological disorders.
Research Directions
Research on semaphorins continues to uncover new roles and mechanisms of action in various biological processes and diseases. Understanding the complex signaling networks mediated by semaphorins and their receptors, as well as their interactions with other signaling pathways, is crucial for developing targeted therapies for a range of conditions.
- Class III semaphorins in spinal cord injury.jpg
Class III semaphorins in spinal cord injury
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