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This thesis is an exploration into somatic movement methods to help ease chronic pain. The study follows my personal experience as a researcher and a dancer with fibromyalgia and other chronic pain conditions. I carry forward a body-centered autoethnographic frame, as the prevailing ethos of this work revolves around considering

This thesis is an exploration into somatic movement methods to help ease chronic pain. The study follows my personal experience as a researcher and a dancer with fibromyalgia and other chronic pain conditions. I carry forward a body-centered autoethnographic frame, as the prevailing ethos of this work revolves around considering bodily experience as an authority in personal well-being. My research follows the spirit of the Intuitive Inquiry research methodology developed by Dr. Rosemarie Anderson and evolved as I progressed through my own research and organizing processes. This thesis document is organized according to eight physical cycles of intuitive inquiry that emerged from my movement and research processes. The cycles address my conditions of chronic pain and disability, my history with dance competition in the United States, my experience with conceptualizations of the body, and the successes I experience with somatic practices, particularly Tensegrity as it applies to the body. My intuitive physical cycles conclude with a proposal for methods of movement and inner-body communication that promote ease in the body and sustainable movement.
ContributorsSmith, Holly (Author) / Roses-Thema, Cynthia (Thesis advisor) / Olarte, David (Committee member) / Anand, Julie (Committee member) / Tang, Yi-Yuan (Committee member) / Arizona State University (Publisher)
Created2023
Description

Agassiz’s desert tortoise (Gopherus agassizii) is a long-lived species native to the Mojave Desert and is listed as threatened under the US Endangered Species Act. To aid conservation efforts for preserving the genetic diversity of this species, we generated a whole genome reference sequence with an annotation based on dee

Agassiz’s desert tortoise (Gopherus agassizii) is a long-lived species native to the Mojave Desert and is listed as threatened under the US Endangered Species Act. To aid conservation efforts for preserving the genetic diversity of this species, we generated a whole genome reference sequence with an annotation based on deep transcriptome sequences of adult skeletal muscle, lung, brain, and blood. The draft genome assembly for G. agassizii has a scaffold N50 length of 252 kbp and a total length of 2.4 Gbp. Genome annotation reveals 20,172 protein-coding genes in the G. agassizii assembly, and that gene structure is more similar to chicken than other turtles. We provide a series of comparative analyses demonstrating (1) that turtles are among the slowest-evolving genome-enabled reptiles, (2) amino acid changes in genes controlling desert tortoise traits such as shell development, longevity and osmoregulation, and (3) fixed variants across the Gopherus species complex in genes related to desert adaptations, including circadian rhythm and innate immune response. This G. agassizii genome reference and annotation is the first such resource for any tortoise, and will serve as a foundation for future analysis of the genetic basis of adaptations to the desert environment, allow for investigation into genomic factors affecting tortoise health, disease and longevity, and serve as a valuable resource for additional studies in this species complex.

Data Availability: All genomic and transcriptomic sequence files are available from the NIH-NCBI BioProject database (accession numbers PRJNA352725, PRJNA352726, and PRJNA281763). All genome assembly, transcriptome assembly, predicted protein, transcript, genome annotation, repeatmasker, phylogenetic trees, .vcf and GO enrichment files are available on Harvard Dataverse (doi:10.7910/DVN/EH2S9K).

ContributorsTollis, Marc (Author) / DeNardo, Dale F (Author) / Cornelius, John A (Author) / Dolby, Greer A (Author) / Edwards, Taylor (Author) / Henen, Brian T. (Author) / Karl, Alice E. (Author) / Murphy, Robert W. (Author) / Kusumi, Kenro (Author)
Created2017-05-31