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Biology subjects

Pires, M. J.

Publications and source records attributed to Pires, M. J..

3 recordsLinked to original sources

A modular lentiviral system for multiplexed gene perturbation and functional analysis reveals interdependence of hormone receptors in breast cancer growth in vivo

Precise and flexible control of gene expression is essential for dissecting gene function in complex biological systems. Although recent developments in genetic engineering and CRISPR/Cas9 technology have expanded tools for gene activation, suppression and editing, their application in physiologically relevant models remains challenging, time consuming, and expensive. Here, we present a modular, doxycycline-inducible vector system that integrates gene overexpression, shRNA-mediated knockdown, and CRISPR/Cas9-mediated regulation within a single, lentivirus-compatible system. The modular design allows rapid exchange of selection markers, epitope tags, and reporters via Gateway cloning, providing broad adaptability across experimental settings. In addition to standard fluorescent and luminescent reporters, the system includes advanced sensors, such as Fucci cell cycle reporters, to enable monitoring of cellular processes. By combining fluorescence barcoding with combinatorial genetic perturbations, the platform supports multiplexed analysis of gene function and genetic interactions through phenotypic characterization by fluorescence imaging or flow cytometry. We demonstrate its utility in vivo with breast cancer intraductal xenografts, which suggest that ER+ breast cancer cells (MCF7) rely on androgen (AR), estrogen (ER) and progesterone receptors (PR) for in vivo growth. This versatile gene perturbation system provides tight temporal control, streamlined implementation, and high-content phenotyping capacity facilitating efficient in vitro and in vivo studies while reducing the use of animals in in vivo validation experiments. It thus expands the experimental repertoire for dynamic, multigene interrogation in complex systems.

molecular biology↗

A cell-based degrader assessment platform facilitates discovery of functional NUDT5 PROTACs

Targeted protein degradation (TPD) via PROTACs and molecular glues holds significant therapeutic promise but demands detailed mechanistic evaluation in live cells to fully understand compound behavior and optimize efficacy. Here, we present an integrated, cell-first platform that combines a modular degradation assay with E3 ligase target engagement readouts for comprehensive assessment of TPD molecules in cells and use it to evaluate PROTACs towards NUDT5. To mimic endogenous degradation conditions and TPD amenability, we established a fusion protein expression system consisting of a lysine-free FKBP12 F36V PROTAC handle (FKBPVK0) and used a HiBiT/akaLuc dual luciferase reporter to accurately measure degradation dynamics. This set-up identified a VHL-dependent NUDT5 PROTAC, DDD2, that induced robust NUDT5 degradation, despite impaired NUDT5 binding in vitro and in cellulo, but no CRBN-dependent degraders. NUDT5 lysine availability mapping with DDD2 and FKBP12 F36V-directed PROTACs suggested that the CRL4CRBN complex is more sensitive to target lysine accessibility than CRL2VHL, which may have implications for E3 ligase choice and therapeutic resistance. CeTEAM drug biosensors were also established towards CRBN and VHL to quantitatively monitor degrader engagement in living cells and confirmed that the tested CRBN-directed NUDT5 PROTACs poorly engaged the E3. All together, this platform provides a versatile and scalable framework for TPD molecule discovery in a cellular context.

biochemistry↗

Probing intracellular determinants of PARP inhibitor selectivity and pharmacology with CeTEAM

PARP inhibitors (PARPi) predominantly targeting PARP1 and PARP2 have revolutionized cancer therapy by selectively killing cancer cells with defective DNA repair. However, achieving PARP1 or PARP2-selective inhibitors is difficult due to their close structural homology. Selectivity profiling is typically done with purified proteins, but these lack the complexity of intracellular environments and could therefore be inaccurate. Here, we duplex PARP1 L713F-GFP and PARP2 L269A-mCherry CeTEAM drug biosensors to systematically characterize binding and cell cycle alterations of 27 PARPi at the single cell level. Our results reveal that most PARPi are generally equipotent for both PARPs, including the next-generation drug, senaparib. However, benzimidazole carboxamide (niraparib) derivatives demonstrated PARP1-selective tendencies, while pthalazinones (olaparib) favored PARP2. AZD5305, a reported PARP1-selective inhibitor with characteristics of both series, was the exception and appears [~]1600-fold more potent towards PARP1. In agreement with current understanding, we see that PARP trapping phenotypes positively correlate with PARP1/2 binding potency, while some potent binders, such as veliparib, did not - likely reflecting their allosteric influence on DNA retention. We also assessed the effect of the PARP1/2 active site component, HPF1, on intracellular PARPi binding and see that HPF1 depletion elicits slight deviations in apparent binding potency, while contributing additively to PARP-DNA trapping phenotypes. The PARP1/2 CeTEAM platform thus provides a structural roadmap for the development of selective PARPi and should facilitate the discovery of better targeted therapies. Furthermore, our results highlight that multiplexing CeTEAM biosensors and layered genetic perturbations can systematically profile determinants of intracellular drug selectivity.

biochemistry↗