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Callejas-Negrete, O. A.

Publications and source records attributed to Callejas-Negrete, O. A..

2 recordsLinked to original sources

On the evolution, function and cellular fate of Neurospora crassa ACW-1 and NCW-3, proteins with different cell wall interaction mechanism

The fungal cell wall is populated by proteins (CWPs), mostly uncharacterized, that show an atypical evolutionary behavior. Most CWPs are glycosylphosphatidylinositol(GPI)-proteins, followed by proteins with internal repeats (PIR), and non-covalently attached proteins that harbor carbohydrate binding domains (CBM). Several structural CWPs are initially bound to the same wall carbohydrates, but either covalently or non-covalently. However, it is not clear whether they work in the same way and if they are subjected to the same evolutionary constraints. In Neurospora crassa, CWPs ACW-1 (NCU08936) and NCW-3 (NCU07817) bind to {beta}-1,3-glucans through a GPI anchor or a predicted CBM-52 domain, respectively. Here, the evolutionary trajectories and functional roles of both CWPs were analyzed. Both proteins localized primarily to distal septa and hyphal wall surfaces. Morphological characterization and stress cell wall assays suggested that both proteins contribute to cell wall integrity, but NCW-3 likely plays a more prominent role. ACW-1 and NCW-3 homologues were predominantly identified in Ascomycota. ACW-1 displayed a broader distribution than NCW-3, whose homologues were largely restricted to Sordariales. Despite these differences, both protein families exhibited similar moderate global conservation and signatures of purifying selection within shared taxa. Nevertheless, a divergence gradient was identified within ACW-1, related to its tandem leucine-rich repeat (LRR) regions. A similar local accumulation of evolutionary change was not observed within NCW-3. These findings suggested that distinct CWP architectures can accommodate different patterns of sequence diversification despite sharing similar global evolutionary change.

microbiology↗

Cell wall-resident PIR proteins show an inverted architecture in Neurospora crassa, but keep their role as wall stabilizers

Proteins with internal repeats (PIRs) are the second most abundant class of fungal cell wall resident proteins. In yeasts, PIRs preserve the wall stability under stressful conditions. They are characterized by conserved N-terminal amino acid sequences repeated in tandem (PIR domains), and a Cys-rich C-terminal domain. Despite PIRs have been inferred in several filamentous fungi genomes, they have not been studied beyond yeasts. In this work, PIRs diversity, evolution and biological role, focused on a new PIRs class, were addressed. Bioinformatic inference of PIRs in fungi indicated they were an innovation in Ascomycota. Predicted PIRs clustered in two main groups: classical yeasts PIRs (N-terminal PIR domains; C-terminal Cys-rich domain), and PIRs from filamentous fungi with an inverted architecture (N-terminal Cys-rich domain; C-terminal PIR domains), which could harbor additional GPI-signals. As representatives of the second group, Neurospora crassa (Nc) PIR-1 (NCU04033) and PIR-2 (NCU07569) were studied. Confocal microscopy of eGFP-labeled PIR-1 and PIR-2 revealed they accumulate in apical plugs; additionally, PIR-1 requires the Kex2 processing site for correct maturation, and its predicted C-terminal GPI modification signal resulted functional. Moreover, Nc {Delta}pir-1 and {Delta}pir-2 single mutants showed a growth rate similar to that of Nc WT, but the double mutant Nc {Delta}pir-1/{Delta}pir-2 grew significatively slower. Similarly, Nc {Delta}pir-1 and Nc {Delta}pir-2 were mildly sensitive to calcofluor white, although Nc {Delta}pir-1/{Delta}pir-2 double mutant was severely impaired. Despite the inverted architecture of PIR-1 and PIR-2, they resulted in cell wall stabilizers as classical yeast PIRs.

microbiology↗