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Dela Cruz, J.

Publications and source records attributed to Dela Cruz, J..

3 recordsLinked to original sources

Consistent differences in eggshell phenotypes select for bluer eggs in an avian host-parasite system

Avian brood parasitism is a well-recognized model for studying coevolution. In this model, hosts adapt the ability to recognize and remove parasitic young to avoid the costs of rearing foreign offspring, while parasites counter-adapt phenotypes to evade detection. A classic example of host-parasite coevolutionary arms race is the great reed warbler and its parasite the common cuckoo (hereafter warbler and cuckoo, respectively). Recent work has found that cuckoo eggs are more likely to be accepted by warblers when those are bluer than their own eggs. Therefore, hosts would select for bluer cuckoo eggs; in turn, this provides directional selection for hosts eggs to remain bluer than cuckoo eggs. Here, we tested whether there were consistent differences in eggshell appearance between cuckoo and warbler eggs using a dataset which provides eggshell coloration of both warblers and cuckoos from the same nest. Despite being a textbook example of mimicry, we found that the cuckoos have significantly browner eggs than the warblers. These findings most likely suggest that this warbler-cuckoo system is experiencing negative frequency-dependent selection, as expected under red queen dynamics. Future research comparing warbler-cuckoo interactions over time would advance our understanding of the coevolution between avian brood parasites and their hosts.

evolutionary biology↗

222-nm far UVC exposure results in DNA damage and transcriptional changes to mammalian cells.

Ultraviolet (UV) germicidal tools have recently gained attention as a disinfection strategy against the COVID-19 pandemic but the safety profile arising from their exposure have been controversial and impeded larger scale implementation. We compare the emerging 222-nm far UVC and 277-nm UVC LED disinfection modules with the traditional UVC mercury lamp emitting at 254 nm to understand their effects on human retinal cell line ARPE-19 and HEK-A keratinocytes. Cells illuminated with 222-nm far UVC survived while those treated with 254-nm and 277-nm wavelengths underwent apoptosis via JNK/ATF2 pathway. However, cells exposed to 222-nm far UVC presented the highest degree of DNA damage as evidenced by yH2AX staining. Globally, these cells presented transcriptional changes in cell cycle and senescence pathways. Thus, the introduction of 222-nm far UVC lamps for disinfection purposes should be carefully considered and designed with the inherent dangers involved.

cell biology↗

Irradiation of UVC LED at 277 nm inactivates coronaviruses by photodegradation of spike protein.

To interrupt SARS-CoV-2 transmission chains, Ultraviolet-C (UVC) irradiation has emerged as a potential disinfection tool to aid in blocking the spread of coronaviruses. While conventional 254-nm UVC mercury lamps have been used for disinfection purposes, other UVC wavelengths have emerged as attractive alternatives but a direct comparison of these tools is lacking with the inherent mechanistic properties unclear. Our results using human coronaviruses, hCoV-229E and hCoV-OC43, have indicated that 277-nm UVC LED is most effective in viral inactivation, followed by 222-nm far UVC and 254-nm UVC mercury lamp. While UVC mercury lamp is more effective in degrading viral genomic content compared to 277-nm UVC LED, the latter results in a pronounced photo-degradation of spike proteins which potentially contributed to the higher efficacy of coronavirus inactivation. Hence, inactivation of coronaviruses by 277-nm UVC LED irradiation constitutes a more promising method for disinfection.

molecular biology↗