Parasitic species, which depend directly on host species for their survival, represent a major regulatory force in ecosystems and a significant component of Earth's biodiversity. Yet the negative impacts of parasites observed at the host level have motivated a conservation paradigm of eradication, moving us farther from attainment of taxonomically unbiased conservation goals. Despite a growing body of literature highlighting the importance of parasite-inclusive conservation, most parasite species remain understudied, underfunded, and underappreciated. We argue the protection of parasitic biodiversity requires a paradigm shift in the perception and valuation of their role as consumer species, similar to that of apex predators in the mid-20th century. Beyond recognizing parasites as vital trophic regulators, existing tools available to conservation practitioners should explicitly account for the unique threats facing dependent species. We built upon concepts from epidemiology and economics (e.g., host-density threshold and cost-benefit analysis) to devise novel metrics of margin of error and minimum investment for parasite conservation. We define margin of error as the risk of accidental host extinction from misestimating equilibrium population sizes and predicted oscillations, while minimum investment represents the cost associated with conserving the additional hosts required to maintain viable parasite populations. This framework will aid in the identification of readily conserved parasites that present minimal health risks. To establish parasite conservation, we propose an extension of population viability analysis for host-parasite assemblages to assess extinction risk. In the direst cases, ex situ breeding programs for parasites should be evaluated to maximize success without undermining host protection. Though parasitic species pose a considerable conservation challenge, adaptations to conservation tools will help protect parasite biodiversity in the face of an uncertain environmental future.
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http://dx.doi.org/10.1111/cobi.12634 | DOI Listing |
CRISPR J
January 2025
Department of Microbiology and Cell Biology, Montana State University, Bozeman, Montana, USA.
Bacteria and archaea acquire resistance to genetic parasites by preferentially integrating short fragments of foreign DNA at one end of a Clustered Regularly Interspaced Short Palindromic Repeat (CRISPR). "Leader" DNA upstream of CRISPR loci regulates transcription and foreign DNA integration into the CRISPR. Here, we analyze 37,477 CRISPRs from 39,277 bacterial and 556 archaeal genomes to identify conserved sequence motifs in CRISPR leaders.
View Article and Find Full Text PDFPLoS One
January 2025
Department of Microbiology, UT Southwestern Medical Center, Dallas, TX, United States of America.
Unraveling the metabolism of Treponema pallidum is a key component to understanding the pathogenesis of the human disease that it causes, syphilis. For decades, it was assumed that glucose was the sole carbon/energy source for this parasitic spirochete. But the lack of citric-acid-cycle enzymes suggested that alternative sources could be utilized, especially in microaerophilic host environments where glycolysis should not be robust.
View Article and Find Full Text PDFArch Biochem Biophys
January 2025
Department of Chemical and Biological Sciences, Biosciences Institute, São Paulo State University (UNESP) - Botucatu-SP, Brazil. Electronic address:
Leishmaniasis is a neglected tropical disease caused by protozoans of the Leishmania genus, against which no effective treatment or control is available. Like other eukaryotes, parasite telomeres are maintained by telomerase, a ribonucleoprotein complex vital for genome stability. Its protein component, TERT (telomerase reverse transcriptase), presents four structural and functional domains, with the TEN (Telomerase N-terminal) and TRBD (Telomerase RNA-binding) located at its N-terminal.
View Article and Find Full Text PDFFish Shellfish Immunol
January 2025
Department of Aquatic Life Medicine, College of Ocean and Biosciences, Kunsan National University, Gunsan 54150, Republic of Korea; Research Institute of Fisheries Science in Offshore Wind Farm (RIFSO), Kunsan National University, 558 Daehakro, Gunsan 54150, Republic of Korea. Electronic address:
In this study, we investigated the variability in virulence among different strains of Perkinsus marinus and other Perkinsus species in Eastern oysters (Crassostrea virginica), examining the immune responses and mortality rates of oysters exposed to different Perkinsus isolates. Compared with the other assessed strains, P. marinus strain ATCC 50787 was found to induce significantly (P < 0.
View Article and Find Full Text PDFGerms
September 2024
MD, PhD, Infectious Diseases Department, University Hospital of Split, HR-21000 Split, Croatia, and University of Split School of Medicine, HR-21000 Split, Croatia, and University Department of Health Studies of the University of Split, HR-21000 Split, Croatia.
Introduction: Alveolar echinococcosis is one of the most pathogenic zoonoses caused by the larval forms of . It is endemic in central Europe, but from 2001 to 2018, eight European countries reported their first cases of alveolar echinococcosis. These numbers testify to unprecedented spread of the infection.
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