Calmodulin requires calcium to be a constitutive component of the spindle pole bodies in fission yeast
Although calmodulin is best known as a calcium sensor, it also possesses Ca2+-independent functions, exemplified by the surprising finding that the budding yeast cells remain viable using a calmodulin mutant that cant bind Ca2+ (Geiser et al., 1991). It remains unclear why Ca2+-calmodulin is required in other yeasts or vertebrates. Here, we determined whether such holo-calmodulin is an essential cytoskeletal protein in fission yeast. The S. pombe calmodulin Cam1 was an integral part of both the spindle pole body (SPB) and many actin structures at the equatorial division plane. Two mutants Cam1-2V and -3V, which bound Ca2+ poorly, reduced their localization at the SPBs by 90%. However, their presence in the actin structures remained unchanged. Replacing the endogenous cam1 with cam1-2V cut the number of the Cam1-interacting protein Pcp1 in the SPB by [~]70% and delayed mitosis. In contrast, the assembly and constriction of the cytokinetic ring, which depends on the Cam1-interacting myosins Myo1, Myo51 and Myo52, accelerated. The temperature-sensitive cam1-2V mutant was rescued by either over-expression of pcp1 or deletion of myo1. Thus, Cam1 depends on Ca2+ to promote the SPB assembly and to modulate the actomyosin ring constriction, suggesting holo-calmodulin as an essential cytoskeletal protein.