1983Proceedings of the National Academy of SciencesOpen access

Short-latency local actions of nerve growth factor at the growth cone.

P. John Seeley, Lloyd A. Greene

Open full text 68 citations

Abstract

Cultures of neurite-bearing pheochromocytoma (PC12) cells and of sympathetic neurons have been examined by time-lapse video microscopy. In the presence of nerve growth factor (NGF), the neurites of such cultures elongated and their growth cones changed geometry, via microspike and lamellipodial motion, on a time scale of minutes. Withdrawal of NGF caused process extension to cease and a progressive reduction in growth-cone area as a result of retraction of lamellipodia and microspikes. By approximately equal to 4 hr after NGF withdrawal, most neurite tips were smooth sided, devoid of conical expansions at their termini, and virtually immobile. Addition of NGF to cultures from which it had been withdrawn induced motion of microspikes and projections from the upper surface of growth cones within 2 min, while lamellipodial spreading and neurite reextension were induced after approximately equal to 20 min. For PC12 cells, these responses to replacement of NGF could not be mimicked by addition of dibutyryl cAMP (less than or equal to 2 mM) or the Ca2+ ionophore A23187 (less than or equal to 5 microM) to NGF-deprived cultures nor inhibited by the presence of EGTA (less than or equal to 2 mM) or calcium antagonists in the culture medium. Since neurite fragments formed by transection of processes of PC12 cells deprived of NGF responded to its replacement in a manner similar to intact neurites, it is concluded that the effects are focal to the neurite and growth cone and independent of the cell body. This influence of NGF on growth-cone shape and motility represents short-term local activation of this structure and has significance for control of neurite extension.

About this research paper

What this paper is about

Cultures of neurite-bearing pheochromocytoma (PC12) cells and of sympathetic neurons have been examined by time-lapse video microscopy. In the presence of nerve growth factor (NGF), the neurites of such cultures elongated and their growth cones changed geometry, via microspike and lamellipodial motion, on a time scale of minutes. Withdrawal of NGF caused process extension to cease and a progressive reduction in growth-cone area as a result of retraction of lamellipodia and microspikes. By approximately equal to 4 hr after NGF withdrawal, most neurite tips were smooth sided, devoid of conical expansions at their termini, and virtually immobile. Addition of NGF to cultures from which it had been withdrawn induced motion of microspikes and projections from the upper surface of growth cones within 2 min, while lamellipodial spreading and neurite reextension were induced after approximately equal to 20 min. For PC12 cells, these responses to replacement of NGF could not be mimicked by addition of dibutyryl cAMP (less than or equal to 2 mM) or the Ca2+ ionophore A23187 (less than or equal to 5 microM) to NGF-deprived cultures nor inhibited by the presence of EGTA (less than or equal to 2 mM) or calcium antagonists in the culture medium. Since neurite fragments formed by transection of processes of PC12 cells deprived of NGF responded to its replacement in a manner similar to intact neurites, it is concluded that the effects are focal to the neurite and growth cone and independent of the cell body. This influence of NGF on growth-cone shape and motility represents short-term local activation of this structure and has significance for control of neurite extension.

Why it matters

OpenAlex reports 68 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Cultures of neurite-bearing pheochromocytoma (PC12) cells and of sympathetic neurons have been examined by time-lapse video microscopy. In the presence of nerve growth factor (NGF), the neurites of such cultures elongated and their growth cones changed geometry, via microspike and lamellipodial motion, on a time scale of minutes. Withdrawal of NGF caused process extension to cease and a progressive reduction in growth-cone area as a result of retraction of lamellipodia and microspikes. By approximately equal to 4 hr after NGF withdrawal, most neurite tips were smooth sided, devoid of conical expansions at their termini, and virtually immobile. Addition of NGF to cultures from which it had been withdrawn induced motion of microspikes and projections from the upper surface of growth cones within 2 min, while lamellipodial spreading and neurite reextension were induced after approximately equal to 20 min. For PC12 cells, these responses to replacement of NGF could not be mimicked by addition of dibutyryl cAMP (less than or equal to 2 mM) or the Ca2+ ionophore A23187 (less than or equal to 5 microM) to NGF-deprived cultures nor inhibited by the presence of EGTA (less than or equal to 2 mM) or calcium antagonists in the culture medium. Since neurite fragments formed by transection of processes of PC12 cells deprived of NGF responded to its replacement in a manner similar to intact neurites, it is concluded that the effects are focal to the neurite and growth cone and independent of the cell body. This influence of NGF on growth-cone shape and motility represents short-term local activation of this structure and has significance for control of neurite extension.

Key concepts: Neurite, Growth cone, Nerve growth factor, Cell biology, Endocrinology, EGTA, Biology, Chemistry

Related papers

Back to paper searchBrowse research topicsOriginal source
Short-latency local actions of nerve growth factor at the growth cone. — Research Paper | ScholarLens