{"id":{"repo_id":"montana","oai_identifier":"oai:scholarworks.umt.edu:etd-2178"},"canonical_url":"https://search.dev.ndltd.org/etd/montana/oai:scholarworks.umt.edu:etd-2178","repository":{"repo_id":"montana","name":"University of Montana","base_url":"https://scholarworks.umt.edu/do/oai/"},"display":{"title":"Using patchy plant invasions to understand how diffuse interactions modify facilitation and competition","abstract":"<p>Indirect interactions among plants promote conditionality in competitive outcomes that affect plant community structure and function. I utilized spatially patchy distributions of two invasive exotic plants, <i>Centaurea stoebe</i> and <i>Bromus tectorum</i>, to explore conditionality in plant interactions and the implications of this conditionality for community invasibility. Additionally, I expanded this research to investigate how these two invaders interact with each other as they overrun native ecosystems. Throughout intermountain prairie of western Montana <i>Centaurea</i> was found at high abundances in open prairie, but was a relatively minor component of the plant community under isolated <i>Pinus ponderosa</i>. In contrast, <i>Bromus</i> was also common in open prairie, but it was most dominant under <i>Pinus</i> canopies.</p> <p>I then experimentally investigated the complex dynamics potentially driving apparent biotic resistance by <i>Pinus</i> to one exotic species but facilitation of a second. I found that <i>Pinus</i> directly inhibited <i>Centaurea</i> growth through shade and litter effects and attenuated the competitive effects of <i>Centaurea</i>. While <i>Pinus</i> litter strongly suppressed <i>Centaurea</i> establishment, <i>Festuca</i> and <i>Bromus</i> where much less effected. The native plant community and <i>Bromus</i> were thereby indirectly facilitated. Additionally, the allelochemical (±)-catechin that is exuded by <i>Centaurea</i> roots was more phytotoxic to <i>Festuca</i> in open prairie than under <i>Pinus</i> canopies and in prairie soils than in conifer soils when tested in a greenhouse. Plant-soil feedbacks were important as well. When <i>Centaurea</i> was grown in full sunlight it \"cultivated\" the soil such that legacy effects inhibited recruitment of <i>Festuca</i> long after <i>Centaurea</i> had been removed, but these feedback effects did not occur when <i>Centaurea</i> cultivated soil in experimentally shaded plots. <i>Bromus</i> was directly facilitated by <i>Pinus</i> shade and soil but these effects were highly moderated by the native grass <i>Festuca idahoensis</i>. While many relatively straightforward pair-wise studies have shown direct facilitative effects of one species on another, these results demonstrate another form of biotic conditionality; strong facilitative effects manifest in pair-wise experiments can be eliminated or diminished by the presence of other competitors. In general, my results illustrate the importance of the competitive and facilitative interactions that occur among natives and exotics ultimately structuring plant communities on natural landscapes.</p>","abstract_html":"&lt;p&gt;Indirect interactions among plants promote conditionality in competitive outcomes that affect plant community structure and function. I utilized spatially patchy distributions of two invasive exotic plants, &lt;i&gt;Centaurea stoebe&lt;/i&gt; and &lt;i&gt;Bromus tectorum&lt;/i&gt;, to explore conditionality in plant interactions and the implications of this conditionality for community invasibility. Additionally, I expanded this research to investigate how these two invaders interact with each other as they overrun native ecosystems. Throughout intermountain prairie of western Montana &lt;i&gt;Centaurea&lt;/i&gt; was found at high abundances in open prairie, but was a relatively minor component of the plant community under isolated &lt;i&gt;Pinus ponderosa&lt;/i&gt;. In contrast, &lt;i&gt;Bromus&lt;/i&gt; was also common in open prairie, but it was most dominant under &lt;i&gt;Pinus&lt;/i&gt; canopies.&lt;/p&gt; &lt;p&gt;I then experimentally investigated the complex dynamics potentially driving apparent biotic resistance by &lt;i&gt;Pinus&lt;/i&gt; to one exotic species but facilitation of a second. I found that &lt;i&gt;Pinus&lt;/i&gt; directly inhibited &lt;i&gt;Centaurea&lt;/i&gt; growth through shade and litter effects and attenuated the competitive effects of &lt;i&gt;Centaurea&lt;/i&gt;. While &lt;i&gt;Pinus&lt;/i&gt; litter strongly suppressed &lt;i&gt;Centaurea&lt;/i&gt; establishment, &lt;i&gt;Festuca&lt;/i&gt; and &lt;i&gt;Bromus&lt;/i&gt; where much less effected. The native plant community and &lt;i&gt;Bromus&lt;/i&gt; were thereby indirectly facilitated. Additionally, the allelochemical (±)-catechin that is exuded by &lt;i&gt;Centaurea&lt;/i&gt; roots was more phytotoxic to &lt;i&gt;Festuca&lt;/i&gt; in open prairie than under &lt;i&gt;Pinus&lt;/i&gt; canopies and in prairie soils than in conifer soils when tested in a greenhouse. Plant-soil feedbacks were important as well. When &lt;i&gt;Centaurea&lt;/i&gt; was grown in full sunlight it &quot;cultivated&quot; the soil such that legacy effects inhibited recruitment of &lt;i&gt;Festuca&lt;/i&gt; long after &lt;i&gt;Centaurea&lt;/i&gt; had been removed, but these feedback effects did not occur when &lt;i&gt;Centaurea&lt;/i&gt; cultivated soil in experimentally shaded plots. &lt;i&gt;Bromus&lt;/i&gt; was directly facilitated by &lt;i&gt;Pinus&lt;/i&gt; shade and soil but these effects were highly moderated by the native grass &lt;i&gt;Festuca idahoensis&lt;/i&gt;. While many relatively straightforward pair-wise studies have shown direct facilitative effects of one species on another, these results demonstrate another form of biotic conditionality; strong facilitative effects manifest in pair-wise experiments can be eliminated or diminished by the presence of other competitors. In general, my results illustrate the importance of the competitive and facilitative interactions that occur among natives and exotics ultimately structuring plant communities on natural landscapes.&lt;/p&gt;","abstract_has_math":false,"creators":["Metlen, Kerry Lee"],"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":2010,"date_issued":"2010-01-01T08:00:00Z","date_published":"2010-01-01T08:00:00Z","updated_at":"2026-07-24T03:12:06Z","subjects":["biotic resistance","indirect interactions","allelopathy","soil nutrients","plant community","plant invasion"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://scholarworks.umt.edu/etd/1159","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:creator","label":"Author","values":["Metlen, Kerry Lee"]}]},{"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":["biotic resistance","indirect interactions","allelopathy","soil nutrients","plant community","plant invasion"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://scholarworks.umt.edu/etd/1159"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["<p>Indirect interactions among plants promote conditionality in competitive outcomes that affect plant community structure and function. I utilized spatially patchy distributions of two invasive exotic plants, <i>Centaurea stoebe</i> and <i>Bromus tectorum</i>, to explore conditionality in plant interactions and the implications of this conditionality for community invasibility. Additionally, I expanded this research to investigate how these two invaders interact with each other as they overrun native ecosystems. Throughout intermountain prairie of western Montana <i>Centaurea</i> was found at high abundances in open prairie, but was a relatively minor component of the plant community under isolated <i>Pinus ponderosa</i>. In contrast, <i>Bromus</i> was also common in open prairie, but it was most dominant under <i>Pinus</i> canopies.</p> <p>I then experimentally investigated the complex dynamics potentially driving apparent biotic resistance by <i>Pinus</i> to one exotic species but facilitation of a second. I found that <i>Pinus</i> directly inhibited <i>Centaurea</i> growth through shade and litter effects and attenuated the competitive effects of <i>Centaurea</i>. While <i>Pinus</i> litter strongly suppressed <i>Centaurea</i> establishment, <i>Festuca</i> and <i>Bromus</i> where much less effected. The native plant community and <i>Bromus</i> were thereby indirectly facilitated. Additionally, the allelochemical (±)-catechin that is exuded by <i>Centaurea</i> roots was more phytotoxic to <i>Festuca</i> in open prairie than under <i>Pinus</i> canopies and in prairie soils than in conifer soils when tested in a greenhouse. Plant-soil feedbacks were important as well. When <i>Centaurea</i> was grown in full sunlight it \"cultivated\" the soil such that legacy effects inhibited recruitment of <i>Festuca</i> long after <i>Centaurea</i> had been removed, but these feedback effects did not occur when <i>Centaurea</i> cultivated soil in experimentally shaded plots. <i>Bromus</i> was directly facilitated by <i>Pinus</i> shade and soil but these effects were highly moderated by the native grass <i>Festuca idahoensis</i>. While many relatively straightforward pair-wise studies have shown direct facilitative effects of one species on another, these results demonstrate another form of biotic conditionality; strong facilitative effects manifest in pair-wise experiments can be eliminated or diminished by the presence of other competitors. In general, my results illustrate the importance of the competitive and facilitative interactions that occur among natives and exotics ultimately structuring plant communities on natural landscapes.</p>"]},{"key":"dc:title","label":"Title","values":["Using patchy plant invasions to understand how diffuse interactions modify facilitation and competition"]}]}],"canonical_facts":{"dc:creator":["Metlen, Kerry Lee"],"dc:description.abstract":["<p>Indirect interactions among plants promote conditionality in competitive outcomes that affect plant community structure and function. I utilized spatially patchy distributions of two invasive exotic plants, <i>Centaurea stoebe</i> and <i>Bromus tectorum</i>, to explore conditionality in plant interactions and the implications of this conditionality for community invasibility. Additionally, I expanded this research to investigate how these two invaders interact with each other as they overrun native ecosystems. Throughout intermountain prairie of western Montana <i>Centaurea</i> was found at high abundances in open prairie, but was a relatively minor component of the plant community under isolated <i>Pinus ponderosa</i>. In contrast, <i>Bromus</i> was also common in open prairie, but it was most dominant under <i>Pinus</i> canopies.</p> <p>I then experimentally investigated the complex dynamics potentially driving apparent biotic resistance by <i>Pinus</i> to one exotic species but facilitation of a second. I found that <i>Pinus</i> directly inhibited <i>Centaurea</i> growth through shade and litter effects and attenuated the competitive effects of <i>Centaurea</i>. While <i>Pinus</i> litter strongly suppressed <i>Centaurea</i> establishment, <i>Festuca</i> and <i>Bromus</i> where much less effected. The native plant community and <i>Bromus</i> were thereby indirectly facilitated. Additionally, the allelochemical (±)-catechin that is exuded by <i>Centaurea</i> roots was more phytotoxic to <i>Festuca</i> in open prairie than under <i>Pinus</i> canopies and in prairie soils than in conifer soils when tested in a greenhouse. Plant-soil feedbacks were important as well. When <i>Centaurea</i> was grown in full sunlight it \"cultivated\" the soil such that legacy effects inhibited recruitment of <i>Festuca</i> long after <i>Centaurea</i> had been removed, but these feedback effects did not occur when <i>Centaurea</i> cultivated soil in experimentally shaded plots. <i>Bromus</i> was directly facilitated by <i>Pinus</i> shade and soil but these effects were highly moderated by the native grass <i>Festuca idahoensis</i>. While many relatively straightforward pair-wise studies have shown direct facilitative effects of one species on another, these results demonstrate another form of biotic conditionality; strong facilitative effects manifest in pair-wise experiments can be eliminated or diminished by the presence of other competitors. In general, my results illustrate the importance of the competitive and facilitative interactions that occur among natives and exotics ultimately structuring plant communities on natural landscapes.</p>"],"dc:identifier":["https://scholarworks.umt.edu/etd/1159"],"dc:publisher":["University of Montana"],"dc:subject":["biotic resistance","indirect interactions","allelopathy","soil nutrients","plant community","plant invasion"],"dc:title":["Using patchy plant invasions to understand how diffuse interactions modify facilitation and competition"],"dc:type":["Dissertation"],"thesis:degree_name":["Doctor of Philosophy (PhD)"]},"updated_at":"2026-07-24T03:12:06Z"}