How genetic and environmental factors interact during development is a key question in current biology, yet little is known about how molecular and cellular processes integrate environmental information. In my PhD research I aimed to address this problem using the network of C. elegans vulval signalling pathways as a model system. The principal objective of my project was to quantitatively examine how involved major signalling pathways, EGF-Ras-MAPK, Wnt and Delta-Notch, are modulated by specific environmental signals. First, I analysed how a specific environmental factor (starvation) alters activities and interplay of signalling pathways underlying C. elegans vulval cell fate patterning. I found that starvation consistently increased vulval induction through upregulation of the EGF-Ras-MAPK pathway activity independent of the Wnt pathway. This environmental effect is mediated by internal sensing of nutrient deprivation, likely acting through the TOR pathway, and affects vulval induction at the level or upstream of the EGF receptor. Second, I examined the environmental sensitivity of the Caenorhabditis vulval developmental system from an evolutionary perspective through comparative analysis of different C. elegans and C. briggsae isolates. I found that extreme temperature induced diverse developmental variants and defects, which were strongly genotype- and species-dependent. The occurrence of certain developmental defects induced by temperature extremes further revealed that vulval precursor cells and associated fates differ in temperature sensitivity, and this cell-specific sensitivity shows evolutionary variation.