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Karban, R.

Publications and source records attributed to Karban, R..

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Influence of delayed density and ultraviolet radiation on caterpillar granulovirus infection and mortality

O_LIInfectious disease is an important potential driver of population cycles, but this must occur through delayed density-dependent infection and resulting fitness effects. Delayed density-dependent infection by baculoviruses can be caused by environmental persistence of viral occlusion bodies, which can be influenced by environmental factors. In particular, ultraviolet radiation is potentially important in reducing the environmental persistence of viruses by inactivating viral occlusion bodies. C_LIO_LIDelayed density-dependent viral infection has rarely been observed empirically at the population level although theory predicts that it is necessary for these pathogens to drive population cycles. Similarly, field studies have not examined the potential effects of ultraviolet radiation on viral infection rates in natural animal populations. We tested if viral infection is delayed density-dependent with the potential to drive cyclic dynamics and if ultraviolet radiation influences viral infection levels. C_LIO_LIWe censused 18 Ranchmans tiger moth (Arctia virginalis) populations across nearly 9{degrees} of latitude over two years and quantified the effects of direct and delayed density and ultraviolet radiation on baculovirus infection rates, infection severity, and survival to adulthood. Caterpillars were collected from each population in the field and reared in the laboratory. Baculovirus has not previously been described infecting Arctia virginalis, and we used genetic methods to confirm the identity of the virus. C_LIO_LIWe found that infection rate, infection severity, and survival to adulthood exhibited delayed density-dependence. Ultraviolet radiation in the previous summer decreased infection severity, and increased survival probability of the virus. Structural equation modelling indicated that the effect of lagged density on moth survival was mediated through infection rate and infection severity, and was 2.5 fold stronger than the effect of ultraviolet radiation on survival through infection severity. We successfully amplified polh, lef-8, and lef-9 viral genes from caterpillar samples, and BLAST search results confirmed that the virus was a nucleopolyhedrovirus. C_LIO_LIOur findings provide clear evidence that delayed density dependence can arise through viral infection rate and severity in insects, which supports the role of viral disease as a potential mechanism, among others, that may drive insect population cycles. Furthermore, our findings support predictions that ultraviolet radiation can modify viral disease dynamics in insect populations, most likely through attenuating viral persistence in the environment. C_LI

ecology