Showing posts with label neuroscience. Show all posts
Showing posts with label neuroscience. Show all posts

Tuesday, 4 February 2025

Unlocking the Complexity of the Mind: A Comprehensive Statistical Exploration of Network Neuroscience and Brain Connectivity | Book Publisher International

Network neuroscience is an interdisciplinary field that combines concepts and methods from neuroscience, network science, and complex systems theory to study the organization and function of the brain as a complex network. It focuses on understanding how the brain's structural and functional connectivity patterns give rise to various cognitive processes and behaviors. In network neuroscience, the brain is represented as a network, where individual brain regions or nodes are connected by edges representing structural or functional connections between them. These connections can be studied using various imaging techniques such as diffusion tensor imaging (DTI) for structural connectivity and functional magnetic resonance imaging (fMRI) for functional connectivity. Researchers in network neuroscience analyze brain networks at different levels of organization, from microscopic to macroscopic scales, and use network science tools to study their topology, dynamics, and information-processing properties. By investigating the brain as a complex network, network neuroscience aims to uncover fundamental principles underlying brain function and dysfunction, with potential implications for understanding neurological and psychiatric disorders, as well as for developing new therapeutic interventions. One key aspect of network neuroscience is its focus on identifying network-level principles that govern the brain's organization and function. By studying the brain as a complex network, researchers can uncover principles of network architecture, such as small-worldness, modularity, and hierarchical organization, which are thought to play crucial roles in information processing and integration in the brain. Understanding these principles not only sheds light on normal brain function but also provides insights into how disruptions in these networks may contribute to neurological and psychiatric disorders. Another important area of research within network neuroscience is the investigation of dynamic interactions within brain networks. The brain is not a static entity but rather a dynamic system that continuously undergoes changes in its activity and connectivity patterns. Network neuroscience seeks to understand the dynamic nature of brain networks, including how network topology evolves over time, how information is transmitted and integrated across the network, and how the brain adapts to different cognitive demands and environmental stimuli. Moreover, network neuroscience has practical applications in fields such as neuroimaging analysis, brain-computer interfaces, and personalized medicine. For example, researchers use network-based approaches to develop novel algorithms for analyzing neuroimaging data, which can improve the accuracy of brain mapping and biomarker discovery. Additionally, network neuroscience provides insights into individual differences in brain connectivity patterns, which can be leveraged to develop personalized interventions for neurological and psychiatric disorders. Network neuroscience offers a powerful framework for understanding the complex interplay between brain structure, function, and behavior. Network neuroscience integrates neuroscience, network science, and complex systems theory to study how the brain's connectivity shapes cognition and behavior. By analyzing brain networks, researchers uncover principles of brain organization and function, advancing our understanding of neurological and psychiatric disorders. This interdisciplinary approach also enhances neuroimaging analysis and facilitates the development of personalized interventions. In sum, network neuroscience provides valuable insights into the intricate relationship between brain structure, function, and behavior.

 

Author (s) Details

 

Tahmineh Azizi

Faculty of Biostatistics, University of Missouri St. Louis, United States and Faculty of Mathematics and Statistics, Grand Canyon University, United States.

 

Please see the book here:- https://doi.org/10.9734/bpi/mono/978-81-975317-4-3

Novel Neurotransmitter and Receptors: An Overview | Chapter 7 | Recent Developments in Chemistry and Biochemistry Research Vol. 4

The nervous system's intricate network relies on neurotransmitters and receptors for signal transmission, orchestrating complex physiological and behavioural responses. While classical neurotransmitter systems have been extensively studied, recent research has unveiled novel neurotransmitters and receptors, expanding our understanding of neural communication. This overview provides a comprehensive synthesis of both classic and emerging neurotransmitter-receptor systems, delineating their functions and receptor subtypes. Additionally, it highlights recent discoveries in the field, emphasizing the role of advanced techniques in identifying previously unknown signalling molecules. By elucidating the intricate landscape of neurotransmitter-receptor interactions, this overview underscores the importance of ongoing research in shaping our understanding of brain function and informing therapeutic interventions for neurological and psychiatric disorders.

 

Author (s) Details

Juhi Aggarwal
Department of Biochemistry, Vallabh-Bhai Patel Chest Institute, University of Delhi, New Delhi, India.

Mansi Modi
Department of Biochemistry, Santosh Medical College and Hospital, Ghaziabad, India.

 

Please see the book here:- https://doi.org/10.9734/bpi/rdcbr/v4/761

Monday, 1 May 2023

The Study of Distance-Labelings for Cycle Graphs | Chapter 13 | Research Highlights in Mathematics and Computer Science Vol. 9

 

Let G = (V,E) be a diagram and Cm be the cycle diagram with m top. In this chapter, we persisted Yeh's work [1] on the distance labeling of the phase diagram Cm. An n-set distance labeling of a diagram G is the labeling of the top (with n labels per top) of G under certain restraints determined by the distance 'tween each pair of vertices in G. Following Yeh's documentation [1], the smallest advantage for the best label in an n-set distance labeling of G is meant by A1(n) (G)…..

Author(s) Details:

Alissa Shen,
St. Stephen’s Episcopal School, Austin, Texas, USA.

Jian Shen,
Department of Mathematics, Texas State University, San Marcos, Texas, USA.

Please see the link here: https://stm.bookpi.org/RHMCS-V9/article/view/10445

Wednesday, 4 January 2023

Use of the Whole Brain Theory to Develop Creativity with Children in a Marginal Area of Lima| Chapter 9 | Research Highlights in Language, Literature and Education Vol. 2

 The main objective of the research search out apply Ned Hermann's whole-mind theory with the four quadrants, in babies under six years adult. For this, practical projects were elaborated for the chosen signs of the Herrmann questionnaire because they can be grown in a playful hole or door in vessel the child population. The people was 28 boys and young women from marginal kins and low socioeconomic status in the city of Lima, Peru, and the use was carried out in 2018. At the end of the study, it maybe affirmed that it is attainable to apply the questionnaire of all Brain Theory to children 'tween two and six years traditional, converting the signs description into playful exercises. Regarding the results by quadrants, quadrant A refer to as logical-analytical is the most complex for designing funny activities. The imaginative capacity of toddlers is stated in activities that signify the combinations of quadrants A accompanying D and C with D. On the other hand, the blend B with D could not be delved into.

Author(s) Details:

MarĂ­a Luisa Flores Urpe,
National University of San Marcos, Peru.

Kenneth Delgado Santa Gadea,
National University of San Marcos, Peru.

Please see the link here: https://stm.bookpi.org/RHLLE-V2/article/view/9034