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Diversity in Cell Signaling Responses01:22

Diversity in Cell Signaling Responses

The physiological function of a cell and cellular communication are outcomes of a range of extrinsic signals, intracellular signaling pathways, and cellular responses. No two cell types express the same repertoire of signaling components. Receptors are highly selective for their cognate ligands, but once activated, they can alter multiple cellular processes such as DNA transcription, protein synthesis, and metabolic activity. 
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Overview of Cell Signaling01:23

Overview of Cell Signaling

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Overview of Cell Signaling01:23

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Despite the protective membrane that separates a cell from the environment, cells need the ability to detect and respond to environmental changes. Additionally, cells often need to communicate with one another. Unicellular and multicellular organisms use a variety of cell signaling mechanisms to communicate with the environment.
Cells respond to many types of information, often through receptor proteins positioned on the membrane. For example, skin cells respond to and transmit touch...
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Evolutionary Processes in Microbes01:26

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Microbial evolution occurs rapidly due to short generation times and a variety of genetic processes, including horizontal gene transfer, mutation, recombination, and genetic drift. These mechanisms collectively enable microbes to adapt swiftly to changing environments.Horizontal gene transfer (HGT) allows genes to move between different species and occurs through three main mechanisms: conjugation, transformation, and transduction. Conjugation involves direct cell-to-cell contact for DNA...
Neuronal Communication01:28

Neuronal Communication

Neurons, the fundamental units of the brain and nervous system, communicate through complex electrochemical signals that underpin all cognitive and bodily functions. This communication is primarily facilitated by a process involving the generation and propagation of an action potential along the axon of the neuron. When the internal electrical charge of a neuron surpasses a certain threshold, an action potential is triggered. This rapid change in voltage travels swiftly along the axon to the...

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Related Experiment Video

Updated: May 20, 2026

Inherent Dynamics Visualizer, an Interactive Application for Evaluating and Visualizing Outputs from a Gene Regulatory Network Inference Pipeline
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Inherent Dynamics Visualizer, an Interactive Application for Evaluating and Visualizing Outputs from a Gene Regulatory Network Inference Pipeline

Published on: December 7, 2021

Evolutionary principles underlying structure and response dynamics of cellular networks.

Arno Steinacher1, Orkun S Soyer

  • 1College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter, UK. A.Steinacher@exeter.ac.uk

Advances in Experimental Medicine and Biology
|July 24, 2012
PubMed
Summary

Systems biology reveals cellular network features like modularity and ultrasensitivity. Understanding their evolutionary emergence is crucial for validating these as universal design principles.

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Area of Science:

  • Systems biology
  • Evolutionary biology
  • Biochemistry

Background:

  • Systems biology and experimental technologies reveal key structural (modularity, hub proteins) and dynamical (ultrasensitivity, feedback) features of cellular networks.
  • The commonality of these features leads many to propose them as universal cellular design principles.
  • However, claims of design principles require an evolutionary perspective.

Purpose of the Study:

  • To argue for the necessity of an evolutionary framework to understand observed features of cellular networks.
  • To review studies that provide evolutionary insights into cellular network features.
  • To establish a framework for deciphering the evolutionary origin and relevance of proposed design principles.

Main Methods:

  • Review of existing literature on systems biology and evolutionary studies of cellular networks.
  • Analysis of how evolutionary processes shape network features.
  • Integration of evolutionary insights with systems biology findings.

Main Results:

  • Observed network features require evolutionary understanding to be validated as design principles.
  • An evolutionary framework can illuminate the origin and relevance of these features.
  • This framework allows prediction of feature presence/absence based on organismal environment and biochemistry.

Conclusions:

  • Evolutionary understanding is essential for validating proposed cellular design principles.
  • An evolutionary perspective can predict the presence of features and their impact on future evolution.
  • This approach bridges systems biology and evolutionary biology for a deeper understanding of cellular organization.