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Molecular Factors Affecting Cell Division01:27

Molecular Factors Affecting Cell Division

Several external and internal factors influence the initiation and inhibition of cell division. For instance, the death of nearby cells or the release of human growth hormone (hGH) promotes cell division. In contrast, lack of hGH or crowding of cells can inhibit cell division.
Several proteins function as internal regulators to ensure each cell cycle stage is completed faithfully before proceeding to the next. Regulator molecules may act directly or influence the activity or production of other...
The Cell Cycle Control System01:28

The Cell Cycle Control System

The cell cycle regulation directs how a cell proceeds from one phase to the next and begins mitosis. The cell cycle control system includes intracellular regulatory molecules and external triggers. They provide "stop" or "advance" signals and operate at specific cell cycle stages termed checkpoints to ensure that a particular process is completed before the cell advances to the next phase.
Cyclins and cyclin-dependent kinases (Cdks) are the primary cell cycle regulators and function at the cell...
The Cell Cycle Control System02:11

The Cell Cycle Control System

The cell cycle is an organized set of events that leads the cell to divide into two daughter cells, each containing chromosomes identical to the parent cell. It is the cell cycle that leads to the formation of an entire organism from a single-cell zygote. Besides, cell division also functions in the renewal or repair of tissues in adult multicellular eukaryotes. For example, in the bone marrow, the stem cells divide to form new blood cells. Although essential for several functions, cell...
The Cell Cycle Control System02:11

The Cell Cycle Control System

The cell cycle is an organized set of events that leads the cell to divide into two daughter cells, each containing chromosomes identical to the parent cell. It is the cell cycle that leads to the formation of an entire organism from a single-cell zygote. Besides, cell division also functions in the renewal or repair of tissues in adult multicellular eukaryotes. For example, in the bone marrow, the stem cells divide to form new blood cells. Although essential for several functions, cell...
Cells Coordinate Growth and Proliferation02:36

Cells Coordinate Growth and Proliferation

Cell size is a significant factor impacting cellular design, function, and fitness. There exists some internal coordination by which cells double their masses before division, thus, achieving homeostasis. Coordination between cell growth and proliferation depends on the checkpoints in between cell cycle phases. Loss of coordination or failure in the checkpoint mechanism can drive the cell to uncontrolled growth and loss of cellular function. Like dividing cells that coordinate cellular growth,...
Positive Regulator Molecules01:45

Positive Regulator Molecules

To consistently produce healthy cells, the cell cycle—the process that generates daughter cells—must be precisely regulated.

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Related Experiment Video

Updated: Jun 6, 2026

Assessing Cell Cycle Progression of Neural Stem and Progenitor Cells in the Mouse Developing Brain after Genotoxic Stress
09:51

Assessing Cell Cycle Progression of Neural Stem and Progenitor Cells in the Mouse Developing Brain after Genotoxic Stress

Published on: May 7, 2014

Cell cycle regulation and interneuron production.

M Elizabeth Ross1

  • 1Laboratory of Neurogenetics and Development, Weill Medical College of Cornell University, New York 1065, New York, USA. mer2005@med.cornell.edu

Developmental Neurobiology
|December 15, 2010
PubMed
Summary

Investigating progenitor cell division in the developing brain reveals similarities and differences between ventral and dorsal regions. Understanding neural precursor cell cycles, particularly G1-phase, is key to neurogenesis in the ventral forebrain.

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Related Experiment Videos

Last Updated: Jun 6, 2026

Assessing Cell Cycle Progression of Neural Stem and Progenitor Cells in the Mouse Developing Brain after Genotoxic Stress
09:51

Assessing Cell Cycle Progression of Neural Stem and Progenitor Cells in the Mouse Developing Brain after Genotoxic Stress

Published on: May 7, 2014

Homochronic Transplantation of Interneuron Precursors into Early Postnatal Mouse Brains
10:08

Homochronic Transplantation of Interneuron Precursors into Early Postnatal Mouse Brains

Published on: June 8, 2018

Assaying Circuit Specific Regulation of Adult Hippocampal Neural Precursor Cells
08:52

Assaying Circuit Specific Regulation of Adult Hippocampal Neural Precursor Cells

Published on: July 24, 2019

Area of Science:

  • Developmental Neuroscience
  • Cell Biology
  • Neurogenesis

Background:

  • Progenitor proliferation in the developing brain is well-studied in the cerebral cortex.
  • Limited knowledge exists regarding progenitor divisions in ventral germinal zones.
  • Interneuron genesis in the ventral forebrain, particularly the medial ganglionic eminence, shows parallels with cortical neurogenesis.

Purpose of the Study:

  • To explore progenitor proliferation in ventral germinal zones of the developing brain.
  • To compare ventral and dorsal telencephalon progenitor differences.
  • To examine neural precursor cell cycles, focusing on G1-phase, in the context of ventral forebrain neurogenesis.

Main Methods:

  • Review of recent observations on interneuron genesis in the medial ganglionic eminence.
  • Analysis of neural precursor cell cycle regulation, with emphasis on G1-phase.
  • Application of current models of cortical neurogenic divisions to ventral forebrain progenitors.

Main Results:

  • Similarities observed between ventral forebrain (medial ganglionic eminence) and cerebral cortex neurogenesis.
  • Potential differences identified between ventral and dorsal telencephalon progenitors.
  • Proliferation within ganglionic eminences discussed through the lens of neural precursor cell cycles.

Conclusions:

  • Ventral germinal zones exhibit distinct characteristics in progenitor proliferation compared to the cerebral cortex.
  • Understanding cell cycle regulation, especially G1-phase, is crucial for comprehending ventral neurogenesis.
  • Models of cortical neurogenesis may offer insights into ventral forebrain development, but specific adaptations are likely.