Distinct molecular mechanisms shape thermal tolerance and its plasticity in a splash pool copepod
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Understanding how organisms respond to changes in temperature is becoming increasingly important in our rapidly changing world. While species differ substantially in their thermal tolerance, the exact molecular mechanisms underpinning this trait variation remain largely unknown. Species with broad geographical distribution provide a unique opportunity to examine variable responses to temperature, as populations experience a diverse range of thermal regimes that differ in the intensity, frequency, and duration of thermal stress. We used a splash pool copepod ( Tigriopus californicus ) with a large geographic range across the North American coast (Baja California to Alaska) to examine variation in thermotolerance and the plasticity of thermotolerance in five populations sampled across 12 degrees of latitude. We found that populations with higher heat tolerance (southern) showed lower plasticity (measured as increased survival at higher temperatures after a prior exposure to sub-lethal temperature). Our comparative transcriptomic analyses revealed that higher heat tolerance was associated with maintaining elevated expression of genes coding for peptidases even in absence of heat shock and higher plasticity of heat tolerance was associated with an increase in gene expression plasticity of genes coding for chitin and extracellular matrix (ECM). Our results highlight ontology-specific patterns associated with changes in the trait means and plasticity of heat tolerance across populations. These findings improve our mechanistic knowledge of thermotolerance as a trait and our ability to predict which populations are most vulnerable to extinction based on the trade-off between fixed thermal limits and plastic responses.