Twitches emerge postnatally during quiet sleep in human infants and are synchronized with sleep spindles
SO_SCPLOWUMMARYC_SCPLOWIn humans and other mammals, the stillness of sleep is punctuated by bursts of rapid eye movements (REMs) and myoclonic twitches of the limbs [1]. Contrary to the notion that twitches are mere by-products of dreams, sensory feedback arising from twitching limbs provides a rich and unique source of activation to the developing sensorimotor system [2]. In fact, it is partly because of the behavioral activation of REM sleep that this state is also called active sleep (AS), in contrast with the behavioral quiescence that gives quiet sleep (QS)--the second major stage of sleep--its name. In human infants, for which AS occupies eight or more hours of each day [3], limb twitching is one among several components that help to identify the state [4-7]; nonetheless, we know relatively little about the structure and functions of twitching across development. Recently, in sleeping infants over the first seven postnatal months [8], we documented a pronounced shift in the temporal expression of twitching beginning around three months of age that suggested a qualitative shift in how twitches are produced. Here, we combine behavioral assessments of twitching with high-density electroencephalography (EEG) and demonstrate that this shift reflects the developmental emergence of limb twitches during QS. Twitches during QS are not only unaccompanied by REMs, but they also occur synchronously with sleep spindles, a hallmark of QS. As QS-related twitching increases with age, sleep spindle rate also increases along the sensorimotor strip. The emerging synchrony between subcortically generated twitches and cortical oscillations suggests the development of functional connectivity among distant sensorimotor structures, with potential implications for detecting and explaining atypical developmental trajectories.