Novel nuclear defects in KLP61F-deficient mutants in Drosophila are partially suppressed by loss of Ncd function

Patricia G Wilson1, Robert Simmons, Sheena Saighal

  • 1Georgia State University, Department of Biology, 24 Peachtree Center, Atlanta 30303, USA. biopgw@gsu.edu

Journal of Cell Science
|September 16, 2004
PubMed

Insights

Kinesin motor KLP61F is crucial for spindle bipolarity. Its loss causes nuclear lamina defects, suggesting it maintains spindle integrity via a non-microtubule matrix, potentially involving Ncd.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • BimC kinesins, like KLP61F in Drosophila, are vital for spindle bipolarity; their absence leads to monopolar spindles.
  • The role of Kar3 kinesin and the interaction of BimC kinesins with the spindle matrix are not fully understood.

Purpose of the Study:

  • To investigate the cytological defects caused by KLP61F loss during M-phase.
  • To explore the potential interaction of KLP61F with the nuclear matrix, specifically the nuclear lamina and its components.

Main Methods:

  • Cytological analysis of klp61F mutant larval neuroblasts and spermatocytes.
  • Immunofluorescence microscopy to identify nuclear matrix components like non-claret disjunctional (Ncd).
  • Analysis of klp61F ncd double mutants to assess genetic interactions.

Main Results:

  • Loss of KLP61F function results in nuclear lamina invaginations, independent of centrosome position.
  • Non-claret disjunctional (Ncd) was identified as a nuclear matrix component.
  • Loss of Ncd function partially rescued bipolar spindle formation in klp61F mutants, though nuclear defects persisted.

Conclusions:

  • KLP61F plays a role in maintaining nuclear lamina integrity during M-phase.
  • Results support a model where KLP61F prevents Ncd-mediated collapse of a non-microtubule nuclear matrix.
  • This matrix, derived from the interphase nucleus, is essential for spindle organization.