Ancient DNA from shells reveals delayed genomic erosion and rapid immune adaptation in the critically endangered black abalone

T T. Brock Wooldridge (Department of Ecology and Evolutionary Biology, University of California) J Joshua D. Kapp (Department of Biomolecular Engineering, University of California) S Sarah M. Ford (San Diego Zoo Wildlife Alliance) W William E. Seligmann (Department of Biomolecular Engineering, University of California) H Holland C. Conwell (Department of Biomolecular Engineering, University of California) T Talia Tzadikario (Department of Bioengineering, Northeastern University) J Jonas Oppenheimer Z Zachary G. Anderson (College of Science, Northeastern University) A Alan Le Moan (Laboratoire de Biologie Intégrative des Modèles Marins, Sorbonne Université, CNRS) A Alicia Abadía-Cardoso (Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Pedregal Playitas) P Peter Raimondi (Department of Ecology and Evolutionary Biology, University of California) B Beth Shapiro (Department of Ecology and Evolutionary Biology, University of California)

Abstract

Predicting the genetic consequences of population decline is a major problem in conservation genomics. Time lags following demographic bottlenecks can delay genomic erosion and make it difficult to determine a population’s current and future risk, especially when prebottleneck genomic baselines are unavailable. Black abalone ( Haliotis cracherodii ) suffered a severe disease bottleneck in the 1980s, resulting in an estimated 99% population decline. However, recent work found surprisingly high genetic diversity and little population structure in current black abalone populations, raising questions of whether genomic erosion has been delayed. To investigate this, we applied ancient DNA methods to prebottleneck abalone shells, generating 59 whole genomes including one 34-fold coverage genome from a 1,500-y-old specimen. These data show that heterozygosity, runs of homozygosity, genetic load, and population structure remained stable up to and following the bottleneck. Simulations reveal that this stability is consistent with even severe bottleneck scenarios because too few generations have lapsed since the decline. Projections suggest that future genomic erosion may be avoided even in limited recovery scenarios. Following the bottleneck we observe widespread balancing selection at genes with immune function, along with parallel increases of two inversions on separate chromosomes that are in linkage disequilibrium, where the disease bottleneck was most severe. Altogether, these findings explain why genomic change has thus far been limited, outline recovery scenarios that minimize genomic erosion, and identify loci that may harbor adaptive variation key to the success of future black abalone populations.

Article Details

Volume / Issue Vol. 123, Issue 22
Published June 02, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (12)

T

T. Brock Wooldridge

Department of Ecology and Evolutionary Biology, University of California

J

Joshua D. Kapp

Department of Biomolecular Engineering, University of California

S

Sarah M. Ford

San Diego Zoo Wildlife Alliance

W

William E. Seligmann

Department of Biomolecular Engineering, University of California

H

Holland C. Conwell

Department of Biomolecular Engineering, University of California

T

Talia Tzadikario

Department of Bioengineering, Northeastern University

J

Jonas Oppenheimer

Z

Zachary G. Anderson

College of Science, Northeastern University

A

Alan Le Moan

Laboratoire de Biologie Intégrative des Modèles Marins, Sorbonne Université, CNRS

A

Alicia Abadía-Cardoso

Facultad de Ciencias Marinas, Universidad Autónoma de Baja California, Pedregal Playitas

P

Peter Raimondi

Department of Ecology and Evolutionary Biology, University of California

B

Beth Shapiro

Department of Ecology and Evolutionary Biology, University of California