Related Experiment Video
Updated: Aug 22, 2026

In Vivo Forward Genetic Screen to Identify Novel Neuroprotective Genes in Drosophila melanogaster
Published on: July 11, 2019
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
Abstract:
KLP61F in Drosophila and other BimC kinesins are essential for spindle bipolarity across species; loss of BimC function generates high frequencies of monopolar spindles. Concomitant loss of Kar3 kinesin function increases the frequency of bipolar spindles although the underlying mechanism is not known. Recent studies raise the question of whether BimC kinesins interact with a non-microtubule spindle matrix rather than spindle microtubules. Here we present cytological evidence that loss of KLP61F function generates novel defects during M-phase in the organization and integrity of the nuclear lamina, an integral component of the nuclear matrix. Larval neuroblasts and spermatocytes of klp61F mutants showed deep involutions in the nuclear lamina extending toward the centrally located centrosomes. Repositioning of centrosomes to form monopolar spindles probably does not cause invaginations as similar invaginations formed in spermatocytes lacking centrosomes entirely. Immunofluorescence microscopy indicated that non-claret disjunctional (Ncd) is a component of the nuclear matrix in somatic cells and spermatocytes. Loss of Ncd function increases the frequency of bipolar spindles in klp61F mutants. Nuclear defects were incompletely suppressed; micronuclei formed near telophase at the poles of bipolar spindle in klp61F ncd spermatocytes. Our results are consistent with a model in which KLP61F prevents Ncd-mediated collapse of a nonmicrotubule matrix derived from the interphase nucleus.
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.
