Brief Communication: Differential degradation of exogenous DNA in microalgal cell lysates
Chlorella sorokiniana is an industrially important microalga, but its genetic manipulation remains limited by poor transformation efficiency. Although several barriers have been proposed, the role of intracellular nuclease activity has received little attention. Here, we compared the degradation of exogenous double-stranded DNA in whole-cell lysates from transformation-recalcitrant (Chlorella sorokiniana and Tetradesmus obliquus) and transformation-proficient (Phaeodactylum tricornutum, Microchloropsis gaditana, and Nannochloropsis oceanica) microalgae. C. sorokiniana rapidly degraded both linear and plasmid DNA, while T. obliquus exhibited intermediate activity. In contrast, no detectable degradation was observed in the transformation-proficient species. DNA degradation in C. sorokiniana occurred within minutes, and nuclease activity in both recalcitrant species was inhibited by EDTA and Zn2+, consistent with a metal ion-dependent endonuclease. These findings suggest that intracellular nuclease activity may represent an underexplored barrier to exogenous DNA stability during transformation and provide a potential target for improving genetic transformation of recalcitrant microalgae.