{"id":{"repo_id":"montana","oai_identifier":"oai:scholarworks.umt.edu:etd-2004"},"canonical_url":"https://search.dev.ndltd.org/etd/montana/oai:scholarworks.umt.edu:etd-2004","repository":{"repo_id":"montana","name":"University of Montana","base_url":"https://scholarworks.umt.edu/do/oai/"},"display":{"title":"THE ECOLOGY OF TICK-BORNE RELAPSING FEVER IN WESTERN NORTH AMERICA","abstract":"<p>In North America the primary cause of tick-borne relapsing fever (TBRF) is the spirochete <i>Borrelia hermsii</i> that is vectored by the tick <i>Ornithodoros hermsi</i>. Ecological investigations were combined with mathematical modeling and genetics to gain a clearer understanding of the interactions and mechanisms responsible for disease maintenance, distribution, and genetic diversity. The objectives of this research were to: 1) identify mammals associated with <italic>B. hermsii</i> and <i>O. hermsi</i> by determining active infection and antibody presence, 2) develop a deterministic model to ascertain ecological and epidemiological parameters essential for disease persistence, 3) resolve the phylogeographic structure of <i>B. hermsii</i> and <i>O. hermsi</i> to identify dispersal events, and 4) determine the environmental requirements of <i>B. hermsii</i> and <i>O. hermsi</i>.</p> <p>We identified 11 species of small mammals with antibodies to relapsing fever spirochetes, while pine squirrels (<i>Tamiasciurus hudsonicus</i>) and deer mice (<i>Peromyscus maniculatus</i>) had active infections. Interactions for the enzootic maintenance of <i>B. hermsii</i> include vectors and host(s). These interactions were incorporated into a SIR compartmental model to calculate R<sub>0</sub>, the basic reproductive number of the disease system. The effect of antigenic variation of the spirochete was assessed by adding relapsing classes to the model, which resulted in an increase of R<sub>0</sub>. We confirmed the suitability of coniferous forests at higher elevations for the presence <i>O. hermsi</i> and identified constraints on this distribution. <i>O. hermsi</i> and <i>B. hermsii</i> were sensitive to temperature extremes throughout the year. Models for global climate change predicted a shift in range of suitable conditions to higher elevations in the year 2050. Little is known about dispersal of these ticks and spirochetes. Phylogeographic analysis of single nucleotide polymorphisms in 49 <i>B. hermsii</i> isolates from western North America suggested that <i>B. hermsii</i> was introduced to Wild Horse Island, Montana, on at least three occasions. Further, sequence data from the mt16S rDNA of <i>O. hermsi</i> suggested that these ticks can move between the mainland and islands on Flathead Lake. Taken together these data define the complex dynamics of the underlying ecological interactions of an otherwise poorly understood system, and provide evidence for the potential emergence of this pathogen in naïve areas.</p>","abstract_html":"&lt;p&gt;In North America the primary cause of tick-borne relapsing fever (TBRF) is the spirochete &lt;i&gt;Borrelia hermsii&lt;/i&gt; that is vectored by the tick &lt;i&gt;Ornithodoros hermsi&lt;/i&gt;. Ecological investigations were combined with mathematical modeling and genetics to gain a clearer understanding of the interactions and mechanisms responsible for disease maintenance, distribution, and genetic diversity. The objectives of this research were to: 1) identify mammals associated with &lt;italic&gt;B. hermsii&lt;/i&gt; and &lt;i&gt;O. hermsi&lt;/i&gt; by determining active infection and antibody presence, 2) develop a deterministic model to ascertain ecological and epidemiological parameters essential for disease persistence, 3) resolve the phylogeographic structure of &lt;i&gt;B. hermsii&lt;/i&gt; and &lt;i&gt;O. hermsi&lt;/i&gt; to identify dispersal events, and 4) determine the environmental requirements of &lt;i&gt;B. hermsii&lt;/i&gt; and &lt;i&gt;O. hermsi&lt;/i&gt;.&lt;/p&gt; &lt;p&gt;We identified 11 species of small mammals with antibodies to relapsing fever spirochetes, while pine squirrels (&lt;i&gt;Tamiasciurus hudsonicus&lt;/i&gt;) and deer mice (&lt;i&gt;Peromyscus maniculatus&lt;/i&gt;) had active infections. Interactions for the enzootic maintenance of &lt;i&gt;B. hermsii&lt;/i&gt; include vectors and host(s). These interactions were incorporated into a SIR compartmental model to calculate R&lt;sub&gt;0&lt;/sub&gt;, the basic reproductive number of the disease system. The effect of antigenic variation of the spirochete was assessed by adding relapsing classes to the model, which resulted in an increase of R&lt;sub&gt;0&lt;/sub&gt;. We confirmed the suitability of coniferous forests at higher elevations for the presence &lt;i&gt;O. hermsi&lt;/i&gt; and identified constraints on this distribution. &lt;i&gt;O. hermsi&lt;/i&gt; and &lt;i&gt;B. hermsii&lt;/i&gt; were sensitive to temperature extremes throughout the year. Models for global climate change predicted a shift in range of suitable conditions to higher elevations in the year 2050. Little is known about dispersal of these ticks and spirochetes. Phylogeographic analysis of single nucleotide polymorphisms in 49 &lt;i&gt;B. hermsii&lt;/i&gt; isolates from western North America suggested that &lt;i&gt;B. hermsii&lt;/i&gt; was introduced to Wild Horse Island, Montana, on at least three occasions. Further, sequence data from the mt16S rDNA of &lt;i&gt;O. hermsi&lt;/i&gt; suggested that these ticks can move between the mainland and islands on Flathead Lake. Taken together these data define the complex dynamics of the underlying ecological interactions of an otherwise poorly understood system, and provide evidence for the potential emergence of this pathogen in naïve areas.&lt;/p&gt;","abstract_has_math":false,"creators":["Johnson, Tammi Lynne"],"institution":"University of Montana","degree_name":"Doctor of Philosophy (PhD)","degree_level":null,"degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2012,"date_issued":"2012-01-01T08:00:00Z","date_published":"2012-01-01T08:00:00Z","updated_at":"2026-07-24T03:11:51Z","subjects":["Disease Ecology","Maxent","Borrelia hermsii","SIR"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://scholarworks.umt.edu/etd/985","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Johnson, Tammi Lynne"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:publisher","label":"Institution","values":["University of Montana"]},{"key":"dc:type","label":"Dc Type","values":["Dissertation"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Doctor of Philosophy (PhD)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Disease Ecology","Maxent","Borrelia hermsii","SIR"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://scholarworks.umt.edu/etd/985"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>In North America the primary cause of tick-borne relapsing fever (TBRF) is the spirochete <i>Borrelia hermsii</i> that is vectored by the tick <i>Ornithodoros hermsi</i>. Ecological investigations were combined with mathematical modeling and genetics to gain a clearer understanding of the interactions and mechanisms responsible for disease maintenance, distribution, and genetic diversity. The objectives of this research were to: 1) identify mammals associated with <italic>B. hermsii</i> and <i>O. hermsi</i> by determining active infection and antibody presence, 2) develop a deterministic model to ascertain ecological and epidemiological parameters essential for disease persistence, 3) resolve the phylogeographic structure of <i>B. hermsii</i> and <i>O. hermsi</i> to identify dispersal events, and 4) determine the environmental requirements of <i>B. hermsii</i> and <i>O. hermsi</i>.</p> <p>We identified 11 species of small mammals with antibodies to relapsing fever spirochetes, while pine squirrels (<i>Tamiasciurus hudsonicus</i>) and deer mice (<i>Peromyscus maniculatus</i>) had active infections. Interactions for the enzootic maintenance of <i>B. hermsii</i> include vectors and host(s). These interactions were incorporated into a SIR compartmental model to calculate R<sub>0</sub>, the basic reproductive number of the disease system. The effect of antigenic variation of the spirochete was assessed by adding relapsing classes to the model, which resulted in an increase of R<sub>0</sub>. We confirmed the suitability of coniferous forests at higher elevations for the presence <i>O. hermsi</i> and identified constraints on this distribution. <i>O. hermsi</i> and <i>B. hermsii</i> were sensitive to temperature extremes throughout the year. Models for global climate change predicted a shift in range of suitable conditions to higher elevations in the year 2050. Little is known about dispersal of these ticks and spirochetes. Phylogeographic analysis of single nucleotide polymorphisms in 49 <i>B. hermsii</i> isolates from western North America suggested that <i>B. hermsii</i> was introduced to Wild Horse Island, Montana, on at least three occasions. Further, sequence data from the mt16S rDNA of <i>O. hermsi</i> suggested that these ticks can move between the mainland and islands on Flathead Lake. Taken together these data define the complex dynamics of the underlying ecological interactions of an otherwise poorly understood system, and provide evidence for the potential emergence of this pathogen in naïve areas.</p>"]},{"key":"dc:title","label":"Title","values":["THE ECOLOGY OF TICK-BORNE RELAPSING FEVER IN WESTERN NORTH AMERICA"]}]}],"canonical_facts":{"dc:creator":["Johnson, Tammi Lynne"],"dc:description.abstract":["<p>In North America the primary cause of tick-borne relapsing fever (TBRF) is the spirochete <i>Borrelia hermsii</i> that is vectored by the tick <i>Ornithodoros hermsi</i>. Ecological investigations were combined with mathematical modeling and genetics to gain a clearer understanding of the interactions and mechanisms responsible for disease maintenance, distribution, and genetic diversity. The objectives of this research were to: 1) identify mammals associated with <italic>B. hermsii</i> and <i>O. hermsi</i> by determining active infection and antibody presence, 2) develop a deterministic model to ascertain ecological and epidemiological parameters essential for disease persistence, 3) resolve the phylogeographic structure of <i>B. hermsii</i> and <i>O. hermsi</i> to identify dispersal events, and 4) determine the environmental requirements of <i>B. hermsii</i> and <i>O. hermsi</i>.</p> <p>We identified 11 species of small mammals with antibodies to relapsing fever spirochetes, while pine squirrels (<i>Tamiasciurus hudsonicus</i>) and deer mice (<i>Peromyscus maniculatus</i>) had active infections. Interactions for the enzootic maintenance of <i>B. hermsii</i> include vectors and host(s). These interactions were incorporated into a SIR compartmental model to calculate R<sub>0</sub>, the basic reproductive number of the disease system. The effect of antigenic variation of the spirochete was assessed by adding relapsing classes to the model, which resulted in an increase of R<sub>0</sub>. We confirmed the suitability of coniferous forests at higher elevations for the presence <i>O. hermsi</i> and identified constraints on this distribution. <i>O. hermsi</i> and <i>B. hermsii</i> were sensitive to temperature extremes throughout the year. Models for global climate change predicted a shift in range of suitable conditions to higher elevations in the year 2050. Little is known about dispersal of these ticks and spirochetes. Phylogeographic analysis of single nucleotide polymorphisms in 49 <i>B. hermsii</i> isolates from western North America suggested that <i>B. hermsii</i> was introduced to Wild Horse Island, Montana, on at least three occasions. Further, sequence data from the mt16S rDNA of <i>O. hermsi</i> suggested that these ticks can move between the mainland and islands on Flathead Lake. Taken together these data define the complex dynamics of the underlying ecological interactions of an otherwise poorly understood system, and provide evidence for the potential emergence of this pathogen in naïve areas.</p>"],"dc:identifier":["https://scholarworks.umt.edu/etd/985"],"dc:publisher":["University of Montana"],"dc:subject":["Disease Ecology","Maxent","Borrelia hermsii","SIR"],"dc:title":["THE ECOLOGY OF TICK-BORNE RELAPSING FEVER IN WESTERN NORTH AMERICA"],"dc:type":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T03:11:51Z"}