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Lopez, L. A. B.

Publications and source records attributed to Lopez, L. A. B..

2 recordsLinked to original sources

A toolkit to generate inducible and interconvertible Drosophila transgenes

The existence of three independent binary systems for conditional gene expression (Gal4/UAS; LexA/LexAop; QF/QUAST) has greatly expanded versatile genetic analyses in the fruit fly Drosophila melanogaster; however, the experimental application of these tools is limited by the need to generate multiple collections of non-interchangeable transgenic fly strains for each inducible gene expression system. To address this practical limitation, we developed a modular vector that contains the regulatory elements from all three binary systems, enabling Gal4-, LexA- or QF-dependent expression of transgenes. Our methods also incorporate DNA elements that facilitate independent site-specific recombination and elimination of regulatory UAS, LexAop or QUAST modules with spatial and temporal control, thus offering unprecedented possibilities and logistical advantages for in vivo genetic modulation and efficient interconversion of overexpression transgenic fly lines.

genetics

Widespread non-apoptotic activation of Drosophila Caspase-2/9 limits JNK signaling, macrophage proliferation and growth of wound-like tumors

Resistance to apoptosis due to caspase deregulation is considered one of the main hallmarks of cancer. However, the discovery of novel non-apoptotic caspase functions has revealed unknown intricacies about the interplay between these enzymes and tumor progression. To investigate this biological problem, we capitalized on a Drosophila tumor model highly relevant for humans that relies on the concomitant upregulation of EGFR and the JAK/STAT signaling pathway. Our results indicate that widespread non-apoptotic activation of initiator caspases limits JNK signaling and facilitates cell fate commitment in these tumors, thus preventing the overgrowth and exacerbation of malignant features. Intriguingly, these caspase functions are strongly linked to the ability of these enzymes to control the recruitment and subsequent proliferation in situ of macrophage-like cells on the tumor. These findings assign novel tumor-suppressor activities to caspases independent of apoptosis, while providing highly relevant molecular details to understanding their diverse contribution during tumor progression.

cell biology