The nervous system is the primary regulatory and communication system of the human body, responsible for integrating sensory information, coordinating physiological responses, and maintaining homeostasis. Nervous tissue consists mainly of neurons and neuroglial cells, which work together to ensure efficient neural communication. The aim of this study was to examine the structural organization of nervous tissue, analyze the morphology and functional characteristics of neurons, and evaluate their clinical significance in health and disease. This study was conducted as a narrative literature review based on information obtained from authoritative textbooks and peer-reviewed scientific publications in the fields of neuroscience, histology, anatomy, and physiology. The findings revealed that neurons serve as the fundamental functional units of nervous tissue and are specialized for the generation and transmission of electrical impulses. Neuroglial cells provide structural support, metabolic regulation, immune protection, and myelination, thereby contributing significantly to nervous system function. The review also highlighted the importance of synaptic transmission, neurotransmitter activity, and neuronal plasticity in maintaining effective communication within neural networks. Furthermore, the analysis demonstrated that dysfunctions affecting neurons and glial cells are associated with numerous neurological disorders, including Alzheimer's disease, Parkinson's disease, multiple sclerosis, epilepsy, and peripheral neuropathies. Advances in neuroscience have expanded understanding of neuron–glia interactions and have opened new perspectives for the development of diagnostic and therapeutic approaches in neurological medicine. In conclusion, nervous tissue represents a highly specialized biological system whose structural and functional integrity is essential for normal physiological activity and neurological health.
Qodirova et al. (Thu,) studied this question.