{"id":27,"date":"2022-08-02T16:07:58","date_gmt":"2022-08-02T20:07:58","guid":{"rendered":"https:\/\/carleton.ca\/envbiotech\/?page_id=27"},"modified":"2026-09-02T17:08:22","modified_gmt":"2026-09-02T21:08:22","slug":"research","status":"publish","type":"page","link":"https:\/\/carleton.ca\/envbiotech\/research\/","title":{"rendered":"Research"},"content":{"rendered":"<h3 style=\"text-align: center;\">Our mission is to use microbes to recover critical metals and mitigate pollution<\/h3>\n<p><\/p>\n<h2><strong>The biogeochemistry of critical metals<\/strong><\/h2>\n<p style=\"text-align: left;\">How can microbes help us recover the critical metals hidden in electronic waste? Our lab tackles this question by combining <strong>microbiology, molecular biology, environmental chemistry, and materials science<\/strong> to understand how microbes transform valuable metals such as cobalt and rare earth elements in e-waste. Students use <strong>DNA sequencing, ICP-MS, electrochemistry, metabolomics, and genetic approaches<\/strong> to uncover new mechanisms controlling the fate of these metals in the environment. This interdisciplinary research is carried out in collaboration with partners in the solid waste sector, including <strong>eCycle Solutions Inc.,<\/strong> ensuring that the solutions we develop are grounded in real-world challenges and industry needs.\u00a0<strong>We\u2019re always looking for undergraduate and graduate students <\/strong>to help advance this research. If you\u2019re interested in microbes, critical metals, and developing more sustainable approaches to resource recovery, please reach out!<\/p>\n<table style=\"border-collapse: collapse; width: 100%;\">\n<tbody>\n<tr>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_149\" class=\"wp-caption aligncenter\" style=\"width: 356px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram.png\"><img decoding=\"async\" loading=\"lazy\" class=\"wp-image-149 \" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram-240x136.png\" alt=\"\" width=\"356\" height=\"202\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram-240x136.png 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram-400x226.png 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram-160x90.png 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram-360x203.png 360w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/E_waste_diagram.png 758w\" sizes=\"(max-width: 356px) 100vw, 356px\" \/><\/a><p class=\"wp-caption-text\">Conceptual diagram of how we characterize microbial communities and metal cycling pathways in e-waste<\/p><\/div><\/td>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_214\" class=\"wp-caption alignnone\" style=\"width: 406px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15.png\"><img decoding=\"async\" loading=\"lazy\" class=\" wp-image-214\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-240x101.png\" alt=\"\" width=\"406\" height=\"171\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-240x101.png 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-400x169.png 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-160x67.png 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-768x324.png 768w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15-360x152.png 360w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Corroded_cobalt_wire-15.png 946w\" sizes=\"(max-width: 406px) 100vw, 406px\" \/><\/a><p class=\"wp-caption-text\">Scanning electron microscope image of a corroded cobalt wire<\/p><\/div><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<div class=\"mceTemp\"><\/div>\n<h2>Microbial controls on toxic metals in polluted ecosystems<\/h2>\n<p>The other arm of the lab focuses on how microbes control the fate of priority contaminants, including metals. Our lab investigates the <strong>microbial cycling of mercury, arsenic, copper, and nickel <\/strong>across diverse ecosystems including landfills, petroleum extraction sites, mine tailings and northern environments. Students combine <strong>geochemical analyses with microbial ecology tools<\/strong> to characterize how microbes control the mobility and toxicity of metals in these habitats. This is collaborative research carried out with <a href=\"https:\/\/poulainlab.ca\/\">Dr. Alexandre Poulain<\/a> (UOttawa), <a href=\"https:\/\/uwaterloo.ca\/hug-research-group\/\">Dr. Laura Hug<\/a> (UWaterloo), <a href=\"https:\/\/earthsci.carleton.ca\/people\/faculty-members\/dr-elliott-skierszkan\">Dr. Elliott Skierszkan<\/a> (Carleton), in addition to partners from <strong>Natural Resources Canada<\/strong>, the <strong>National Research Council<\/strong>, and<strong> Imperial Oil<\/strong>.<\/p>\n<table style=\"border-collapse: collapse; width: 100%;\">\n<tbody>\n<tr>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_322\" class=\"wp-caption aligncenter\" style=\"width: 440px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-scaled.jpeg\"><img decoding=\"async\" loading=\"lazy\" class=\" wp-image-322\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-240x180.jpeg\" alt=\"\" width=\"440\" height=\"330\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-240x180.jpeg 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-400x300.jpeg 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-160x120.jpeg 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-768x576.jpeg 768w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-1536x1152.jpeg 1536w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-2048x1536.jpeg 2048w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-800x600.jpeg 800w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Mine_tailings-360x270.jpeg 360w\" sizes=\"(max-width: 440px) 100vw, 440px\" \/><\/a><p class=\"wp-caption-text\">Example of a mine tailings field site where we characterize microbes<\/p><\/div><\/td>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_323\" class=\"wp-caption aligncenter\" style=\"width: 508px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic.png\"><img decoding=\"async\" loading=\"lazy\" class=\" wp-image-323\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-240x104.png\" alt=\"\" width=\"508\" height=\"220\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-240x104.png 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-400x174.png 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-160x69.png 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-768x333.png 768w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-1536x667.png 1536w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic-360x156.png 360w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Culture_precipitate_arsenic.png 1608w\" sizes=\"(max-width: 508px) 100vw, 508px\" \/><\/a><p class=\"wp-caption-text\">Microbes removing arsenic from solution by precipitating sulphur-bearing minerals<\/p><\/div><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p><\/p>\n<h2>Sustainable strategies to managing plastic pollution<\/h2>\n<p>Our research explores how plastics can be identified, transformed, and biodegraded in environmental and engineered systems. We combine <strong>Raman spectroscopy, mass spectrometry, microbiology, and molecular approaches<\/strong> to develop new strategies for monitoring and understanding plastic cycling. This research is a collaboration with <a href=\"https:\/\/carleton.ca\/fact-lab\/\">Dr. Yaxi Hu&#8217;s FACT lab<\/a> where we develop new analytical chemistry methods and machine learning algorithms to <strong>identify plastics and byproducts of plastic biodegradation<\/strong> in solid waste. We also work with <strong>Dr. Allyson Brady<\/strong> (Carleton) and <a href=\"https:\/\/www.geomicromcgill.com\/\">Dr. Nagissa Mahmoudi<\/a> (McGill) to combine carbon isotope analyses with whole-community DNA sequencing to study microplastic biogeochemistry in wetlands in the Ottawa\/Gatineau region. We are currently recruiting for the wetland project, so if you&#8217;d like to join our team, please check out this <a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Brady_Gregoire_GraduateStudentAd_Microplastics.pdf\">posting<\/a>!<\/p>\n<table style=\"border-collapse: collapse; width: 100%;\">\n<tbody>\n<tr>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_328\" class=\"wp-caption aligncenter\" style=\"width: 394px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces.jpg\"><img decoding=\"async\" loading=\"lazy\" class=\" wp-image-328\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces-240x182.jpg\" alt=\"\" width=\"394\" height=\"299\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces-240x182.jpg 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces-400x304.jpg 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces-160x121.jpg 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces-360x273.jpg 360w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Plastic_pieces.jpg 647w\" sizes=\"(max-width: 394px) 100vw, 394px\" \/><\/a><p class=\"wp-caption-text\">Examples of plastic particles identified with machine learning<\/p><\/div><\/td>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_327\" class=\"wp-caption aligncenter\" style=\"width: 352px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-scaled.jpeg\"><img decoding=\"async\" loading=\"lazy\" class=\" wp-image-327 aligncenter\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-240x180.jpeg\" alt=\"\" width=\"352\" height=\"264\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-240x180.jpeg 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-400x300.jpeg 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-160x120.jpeg 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-768x576.jpeg 768w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-1536x1152.jpeg 1536w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-2048x1536.jpeg 2048w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-800x600.jpeg 800w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Allyson_Dan_BS_Sample-processing-1._plastic_projectjpeg-360x270.jpeg 360w\" sizes=\"(max-width: 352px) 100vw, 352px\" \/><\/a><p class=\"wp-caption-text\">Dr. Allyson Brady and Dr. Daniel Gr\u00e9goire subsampling sediments for plastic analyses in Gatineau<\/p><\/div><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<div class=\"mceTemp\"><\/div>\n<h2>Microbial solutions to &#8220;forever chemicals&#8221;<\/h2>\n<p>We have recently expanded into examining how microorganisms transform persistent environmental contaminants with a focus on halogenated contaminants such as per- and polyfluoroalkyl substances (PFAS). We combine whole-community <strong>DNA and RNA sequencing with analytical chemistry<\/strong> to identify the microbial <strong>pathways and environmental factors that control PFAS transformation.<\/strong> Current projects examine how the gut microbiome influences PFAS chemistry and toxicity in collaboration with <a href=\"https:\/\/www.arandlab.ca\/\">Dr. Amy Rand<\/a>. We also contribute directly to policy advice on these pollutants through collaborative research with Environment and Climate Change Canada that examines how microbes in landfills can be used to study the toxicity of halogenated contaminant mixtures. We use these findings to examine how microbial adaptations to halogenated compounds in landfills can be used for bioremediation with our partners at <a href=\"https:\/\/www.siremlab.com\/\">SiREM<\/a>.<\/p>\n<table style=\"border-collapse: collapse; width: 100%;\">\n<tbody>\n<tr>\n<td style=\"width: 50%;\">\n<div class=\"mceTemp\"><\/div>\n<p><div id=\"attachment_331\" class=\"wp-caption alignnone\" style=\"width: 420px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract.jpg\"><img decoding=\"async\" loading=\"lazy\" class=\"wp-image-331\" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract-240x131.jpg\" alt=\"\" width=\"420\" height=\"229\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract-240x131.jpg 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract-400x219.jpg 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract-160x88.jpg 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract-360x197.jpg 360w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Gut_PFAS_graphical_abstract.jpg 433w\" sizes=\"(max-width: 420px) 100vw, 420px\" \/><\/a><p class=\"wp-caption-text\">Microbial pathways to breaking down forever chemicals in the gut<\/p><\/div><\/td>\n<td style=\"width: 50%;\">\n<p><div id=\"attachment_329\" class=\"wp-caption aligncenter\" style=\"width: 357px\"><a href=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-scaled.jpeg\"><img decoding=\"async\" loading=\"lazy\" class=\"wp-image-329 \" src=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-240x180.jpeg\" alt=\"\" width=\"357\" height=\"268\" srcset=\"https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-240x180.jpeg 240w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-400x300.jpeg 400w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-160x120.jpeg 160w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-768x576.jpeg 768w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-1536x1152.jpeg 1536w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-2048x1536.jpeg 2048w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-800x600.jpeg 800w, https:\/\/carleton.ca\/envbiotech\/wp-content\/uploads\/Nitrification_cultures-360x270.jpeg 360w\" sizes=\"(max-width: 357px) 100vw, 357px\" \/><\/a><p class=\"wp-caption-text\">Bioremediation cultures for chloroform in action<\/p><\/div><\/td>\n<\/tr>\n<\/tbody>\n<\/table>\n<p><\/p>\n<h2><\/h2>\n<h2><\/h2>\n<h2><\/h2>\n<p><\/p>\n<p><\/p>\n<p><\/p>\n<p><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Our mission is to use microbes to recover critical metals and mitigate pollution The biogeochemistry of critical metals How can microbes help us recover the critical metals hidden in electronic waste? Our lab tackles this question by combining microbiology, molecular biology, environmental chemistry, and materials science to understand how microbes transform valuable metals such as [&hellip;]<\/p>\n","protected":false},"author":5,"featured_media":0,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_relevanssi_hide_post":"","_relevanssi_hide_content":"","_relevanssi_pin_for_all":"","_relevanssi_pin_keywords":"","_relevanssi_unpin_keywords":"","_relevanssi_related_keywords":"","_relevanssi_related_include_ids":"","_relevanssi_related_exclude_ids":"","_relevanssi_related_no_append":"","_relevanssi_related_not_related":"","_relevanssi_related_posts":"","_relevanssi_noindex_reason":"","_mi_skip_tracking":false,"_exactmetrics_sitenote_active":false,"_exactmetrics_sitenote_note":"","_exactmetrics_sitenote_category":0,"_monsterinsights_sitenote_active":false,"_monsterinsights_sitenote_note":"","_monsterinsights_sitenote_category":0,"footnotes":"","_links_to":"","_links_to_target":""},"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v21.2 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Research - The Environmental Biogeochemistry and Biotechnology Lab<\/title>\n<meta name=\"description\" content=\"Our mission is to use microbes to recover critical metals and mitigate pollution &nbsp; 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