Weaving Life Into Regolith: Synthetic Autotrophic–Heterotrophic Consortia for Autonomous Biofabrication From Granular Feedstocks

ABSTRACT Long‐duration human missions to Mars will require autonomous systems capable of converting in situ resources into structural materials, tools, and functional components. More broadly, such systems represent a class of resource‐limited bioprocesses relevant to extreme‐environment manufacturing. Here, we investigate synthetic autotrophic–heterotrophic consortia, inspired by lichen biology, as a platform for autonomous biofabrication from granular feedstocks. We experimentally screened filamentous fungi and paired them with diazotrophic cyanobacteria to identify mutually supportive consortia capable of sustained growth and biomineral production in the presence of Martian regolith simulant as the primary inorganic substrate, without external organic carbon or nitrogen inputs. Selected co‐cultures exhibited evidence of metabolic coupling, and untargeted metabolomic analysis revealed coordinated reprogramming consistent with integrated carbon and nitrogen metabolism within the consortia. These systems facilitated mineral consolidation of regolith particles, demonstrating the feasibility of near–closed‐loop biomineral production under resource‐limited conditions. While integration with additive manufacturing remains conceptual, this study establishes a framework for engineering self‐sustaining microbial consortia for biomaterials production and highlights opportunities for coupling metabolism with material synthesis in both extraterrestrial and terrestrial environments.

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Publication Details

Journal
Biotechnology and Bioengineering
Published
2026-09-25
DOI
https://doi.org/10.1002/bit.70392
Primary Topic
Biocrusts and Microbial Ecology
Type
article
Field-Weighted Citation Impact
0.00
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article

Weaving Life Into Regolith: Synthetic Autotrophic–Heterotrophic Consortia for Autonomous Biofabrication From Granular Feedstocks

Yong Hong Huang, Congrui Jin, Richard A. Wilson, Erin Carr et al.
Biotechnology and Bioengineering
Biocrusts and Microbial Ecology
article

Weaving Life Into Regolith: Synthetic Autotrophic–Heterotrophic Consortia for Autonomous Biofabrication From Granular Feedstocks

Yong Hong Huang, Congrui Jin, Richard A. Wilson, Erin Carr, Nisha Rokaya, Kumar Shrestha
article en

Abstract

ABSTRACT Long‐duration human missions to Mars will require autonomous systems capable of converting in situ resources into structural materials, tools, and functional components. More broadly, such systems represent a class of resource‐limited bioprocesses relevant to extreme‐environment manufacturing. Here, we investigate synthetic autotrophic–heterotrophic consortia, inspired by lichen biology, as a platform for autonomous biofabrication from granular feedstocks. We experimentally screened filamentous fungi and paired them with diazotrophic cyanobacteria to identify mutually supportive consortia capable of sustained growth and biomineral production in the presence of Martian regolith simulant as the primary inorganic substrate, without external organic carbon or nitrogen inputs. Selected co‐cultures exhibited evidence of metabolic coupling, and untargeted metabolomic analysis revealed coordinated reprogramming consistent with integrated carbon and nitrogen metabolism within the consortia. These systems facilitated mineral consolidation of regolith particles, demonstrating the feasibility of near–closed‐loop biomineral production under resource‐limited conditions. While integration with additive manufacturing remains conceptual, this study establishes a framework for engineering self‐sustaining microbial consortia for biomaterials production and highlights opportunities for coupling metabolism with material synthesis in both extraterrestrial and terrestrial environments.

Biotechnology and Bioengineering
University of Nebraska–Lincoln (US), University of Florida (US), Texas A&M University (US)
Openalex Percentile: Top 8%
Biocrusts and Microbial Ecology
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Weaving Life Into Regolith: Synthetic Autotrophic–Heterotrophic Consortia for Autonomous Biofabrication From Granular Feedstocks — Yong Hong Huang, Congrui Jin, et al. · Biotechnology and Bioengineering (2026) | TGRS Research Map | TGRS