Our somatosensory system detects mechanical stimuli with exquisite sensitivity. We can feel the movement a single hair, discriminate two points on our fingertips with sub-millimeter accuracy, and differentiate changes in vibrational amplitude and frequency over several orders of magnitude. Additionally, our proprioceptors create a dynamic map of our bodies in space through vigilant monitoring of our muscles and tendons. My lab has been focusing on increasing our understanding of the distinct subtypes of mechanosensory neurons that exist, the molecular architecture underlying force transduction, and the physiological roles these molecules and cells play in touch and pain. Skin is our largest sensory organ. Through it we sense touch and temperature as well as warnings of potential damage. This is achieved through the activation of distinct classes of primary sensory neurons have their afferent nerve terminals in skin. Research over many decades has sought to link sensory neuron function, neurochemistry and morphology. We are leveraging advances in mouse genetics and imaging to identify neurons that are critically important for the sensation of touch and mechanical pain. We have used in vivo functional imaging to identify sensory neurons tuned to different types of mechanical stimuli. In parallel, we have been studying the role of specific molecules in mechanosensation. Specific we have been focused on a single gene, called Piezo2, that encodes a stretch-gated ion channel that we and others have shown is a major principle receptor for mechanical stimuli in mice and humans. As highlighted above, great progress has been made researching model organisms. How well these studies translate to humans is an open question. The study of rare inherited conditions offers an alternative approach to gain a window into the genetic underpinnings of human physiology. As part of an ongoing screen of patients with undiagnosed neuromuscular disorders, we are collaborating with Carsten Bonmmann (NINDS) to study patients he has identified with profound but selective deficits in mechanosensation. We are combining exome sequencing, sensory testing, and functional imaging in humans with model systems studies in heterologous cell lines and mice. It is our hope that by doing so we will discovery new disease alleles while better understanding the basic biology that underlies mechanosensation. Along these lines, we recently identified and described patients with inherited mutations in the gene PIEZO2, a stretchgated ion channel shown to be critically important for the detection of mechanical stimuli. Quantitative assessment of these patients revealed alterations in the sensations of touch and proprioception that provided unique insights into the function of this important molecule and the impact of its loss on many aspects of life we take for granted.

Project Start
Project End
Budget Start
Budget End
Support Year
6
Fiscal Year
2019
Total Cost
Indirect Cost
Chesler, Alexander T; Szczot, Marcin (2018) Portraits of a pressure sensor. Elife 7:
Lam, Ruby M; Chesler, Alexander T (2018) Shear elegance: A novel screen uncovers a mechanosensitive GPCR. J Gen Physiol 150:907-910
Wlaschin, Josette J; Gluski, Jacob M; Nguyen, Eileen et al. (2018) Dual leucine zipper kinase is required for mechanical allodynia and microgliosis after nerve injury. Elife 7:
Szczot, Marcin; Pogorzala, Leah A; Solinski, Hans Jürgen et al. (2017) Cell-Type-Specific Splicing of Piezo2 Regulates Mechanotransduction. Cell Rep 21:2760-2771
Ghitani, Nima; Barik, Arnab; Szczot, Marcin et al. (2017) Specialized Mechanosensory Nociceptors Mediating Rapid Responses to Hair Pull. Neuron 95:944-954.e4
Chesler, Alexander T; Szczot, Marcin; Bharucha-Goebel, Diana et al. (2016) The Role of PIEZO2 in Human Mechanosensation. N Engl J Med 375:1355-1364
Le Pichon, Claire E; Chesler, Alexander T (2014) The functional and anatomical dissection of somatosensory subpopulations using mouse genetics. Front Neuroanat 8:21