Table 1.
Response variable | Degree of freedom | χ2/F value | P value |
---|---|---|---|
(a) METS early | CO:METS early:ORDO late | |||
Host viability | 75 | 0.6807 | 0.4093 |
Parasite infectivity | 68 | 0.9820 | 0.3217 |
Parasite growth | 42 | 0.5758 | 04522 |
Net output per exposed host | 75 | 0.8109 | 0.3708 |
(b) METS late | CO:ORDO early:METS late | |||
Host viability | 76 | 4.4597 | 0.0347 |
Parasite infectivity | 53 | 0.0768 | 0.7817 |
Parasite growth | 38 | 5.7688 | 0.0213 |
Net output per exposed host | 76 | 0.4945 | 0.0291 |
(c) ORDO early | CO:ORDO early:METS late | |||
Host viability | 78 | 3.8652 | 0.0493 |
Parasite infectivity | 58 | 2.9877 | 0.0839 |
Parasite growth | 19 | 0.1618 | 0.6920 |
Net output per exposed host | 78 | 6.0996 | 0.0157 |
(d) ORDO late | CO:METS early:ORDO late | |||
Host viability | 74 | 2.9155 | 0.0877 |
Parasite infectivity | 70 | 1.2013 | 0.2731 |
Parasite growth | 43 | 1.2613 | 0.2676 |
Net output per exposed host | 73 | 1.2907 | 0.2596 |
A generalized linear model was used, assuming a binomial distribution of residuals for host viability of individual Daphnia (0 = early death, 1 = viable host) and infection status of individual Daphnia (0 = non infected, 1 = infected). A general linear model was used, assuming a normal distribution of residuals for parasite growth (rate of spore production per infected host) and the net spore output per exposed host. Significant P values (⩽0.05) are highlighted in bold.