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Casas, A.

Publications and source records attributed to Casas, A..

2 recordsLinked to original sources

Identification of α-azacyclic acetamide-based inhibitors of P. falciparum Na+ pump (PfATP4) with fast-killing asexual blood-stage antimalarial activity by phenotypic screening

Malaria treatments are compromised by drug resistance, creating an urgent need to discover new drugs. We used a phenotypic high-throughput screening (HTS) platform to identify new antimalarials, uncovering three related pyrrole-, indole-, and indoline-based series with a shared -azacyclic acetamide core. These compounds showed fast-killing activity on asexual blood-stage Plasmodium falciparum parasites, were not cytotoxic, and disrupted parasite intracellular pH and Na+ regulation similarly to cipargamin (KAE609), a clinically advanced inhibitor of the P. falciparum Na+ pump (PfATP4). PfATP4 is localized to the parasite plasma membrane and is essential for maintaining a low cytosolic Na+ concentration. Resistance selections on P. falciparum parasites with two -azacyclic acetamide analogs identified mutations in PfATP4, and cross-resistance was observed across the -azacyclic acetamides and KAE609, confirming PfATP4 as the target. PfATP4 is a well-established antimalarial target, and identification of additional PfATP4 inhibitors provides alternative avenues to disrupt its function.

microbiology↗

Laser NIR irradiation enhances antimicrobial photodynamic inactivation of biofilms of Staphylococcus aureus

Photodynamic inactivation (PDI) utilizes a photosensitizer (PS) activated by visible light to generate reactive oxygen species (ROS), to kill bacteria. PDI is effective against planktonic microorganisms, but biofilms are less sensitive due to limited PS and oxygen penetration. Near-infrared treatment (NIRT), involve the use of near-infrared light to kill bacteria either via thermal effects or ROS production. Our objective was to enhance S. aureus biofilms sensitivity to PDI by pre-treating with NIR irradiation before visible light exposure. In an in vitro biofilm model, laser NIRT (980 nm) followed by exposure to PDI, showed a synergistic effect on bacterial viability loss (4-log CFU vs 1-log loss with individual treatments). Interestingly, pre-heating liquid medium had no significant impact on PDI efficacy, suggesting that both thermal and non-thermal effects of NIR may be involved. NIRT increased PS uptake, induced clefts in the biofilm matrix, and released bacterial cells from the biofilm. NIRT induced a transient increase in the temperature to 46{degrees}C of in vitro cultures, however under the same conditions, when mice were irradiated, skin temperature rose to 37{degrees}. Our findings suggest that NIR irradiation serves as a complementary treatment to PDI, allowing reducing PS concentration, and highlighting its potential as an effective and resource-efficient antibacterial approach.

biochemistry↗