Search PubMed⌕ Search

Biomedical subjects

C D Qin

Publications and source records attributed to C D Qin.

3 recordsLinked to original sources

A model for neurite growth and neuronal morphogenesis.

A model is presented for tensile regulation of neuritic growth. It is proposed that the neurite tension can be determined by Hooke's law and determines the growth rate of neurites. The growth of a neurite is defined as the change in its unstretched length. Neuritic growth rate is assumed to increase in proportion to tension magnitude over a certain threshold [Dennerll et al., J. Cell Biol. 107: 665-674 (1988)]. The movement of branch nodes also contributes to the neuronal morphogenesis. It is supposed that the rate of a branch-node displacement is in proportion to the resultant neuritic tension exerted on this node. To deal with the growth-cone movement, it is further supposed that the environment exerts a traction force on the growth cone and the rate of growth-cone displacement is determined by the vector sum of the neuritic tension and the traction force. A group of differential equations are used to describe the model. The key point of the model is that the traction force and the neuritic tension are in opposition to generate a temporal contrast-enhancing mechanism. Results of a simulation study suggest that the model can explain some phenomena related to neuronal morphogenesis.

Animals↗

On the mechanisms of growth cone locomotion: modeling and computer simulation.

In this paper we put forward a model for growth-cone locomotion in which the actin cytoskeleton is represented by a two-dimensional contractile network and the growth-cone membrane is represented by contractile segments coupled with the actin network. Our computer simulation suggests that many mechanisms, such as the actin polymerization and depolymerization, the attachment of actin filaments to the substratum, the transformation of the growth-cone neck into the axon, and the axonal transport, co-operate to generate growth-cone movement.

Actins↗

Neurite branching pattern formation: modeling and computer simulation.

A model for nerve cell pattern formation is proposed in this paper. The model is based on some experimental results and an assumption that there is a kind of inhibitive interaction between growing neurites on the same nerve cell. In this paper, this interaction is termed lateral inhibition. A group of ordinary differential equations are used to describe the elongation of the terminal neurite segments of individual nerve cells. Computer simulation and comparison of it with in vitro studies are also made in this paper.

Animals↗