Next Article in Journal
Correlating Various Clinical Outcomes and Associated Dispositions in Patients with Severe Traumatic Brain Injury (TBI)
Next Article in Special Issue
Antioxidant Defense Systems in Plants: Mechanisms, Regulation, and Biotechnological Strategies for Enhanced Oxidative Stress Tolerance
Previous Article in Journal
Managing Japanese Encephalitis Virus as a Veterinary Infectious Disease Through Animal Surveillance and One Health Control Strategies
Previous Article in Special Issue
Water Stress Is Differently Tolerated by Fusarium-Resistant and -Susceptible Chickpea Genotypes During Germination
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Communication

Millet in Bioregenerative Life Support Systems: Hypergravity Resilience and Predictive Yield Models

by
Tatiana S. Aniskina
1,*,
Arkady N. Kudritsky
2,
Olga A. Shchuklina
1,
Nikita E. Andreev
3 and
Ekaterina N. Baranova
1,*
1
N.V. Tsitsin Main Botanical Garden of Russian Academy of Sciences, 127276 Moscow, Russia
2
Federal State Budgetary Educational Institution of Higher Education “D.F.”, Ustinov Baltic State Technical University “VOENMEH”, 190005 Saint Petersburg, Russia
3
Moscow Power Engineering Institute, National Research University, 111250 Moscow, Russia
*
Authors to whom correspondence should be addressed.
Life 2025, 15(8), 1261; https://doi.org/10.3390/life15081261
Submission received: 20 June 2025 / Revised: 29 July 2025 / Accepted: 6 August 2025 / Published: 7 August 2025
(This article belongs to the Special Issue Physiological Responses of Plants Under Abiotic Stresses)

Abstract

The prospects for long-distance space flights are becoming increasingly realistic, and one of the key factors for their implementation is the creation of sustainable systems for producing food on site. Therefore, the aim of our work is to assess the prospects for using millet in biological life support systems and to create predictive models of yield components for automating plant cultivation control. The study found that stress from hypergravity (800 g, 1200 g, 2000 g, and 3000 g) in the early stages of millet germination does not affect seedlings or yield. In a closed system, millet yield reached 0.31 kg/m2, the weight of 1000 seeds was 8.61 g, and the yield index was 0.06. The paper describes 40 quantitative traits, including six leaf and trichome traits and nine grain traits from the lower, middle and upper parts of the inflorescence. The compiled predictive regression equations allow predicting the accumulation of biomass in seedlings on the 10th and 20th days of cultivation, as well as the weight of 1000 seeds, the number of productive inflorescences, the total above-ground mass, and the number and weight of grains per plant. These equations open up opportunities for the development of computer vision and high-speed plant phenotyping programs that will allow automatic correction of the plant cultivation process and modeling of the required yield. Predicting biomass yield will also be useful in assessing the load on the waste-free processing system for plant waste at planetary stations.
Keywords: Panicum miliaceum L.; centrifugation; germination; hypergravity; seedling development; yield modeling; bioregenerative life support systems; yield components Panicum miliaceum L.; centrifugation; germination; hypergravity; seedling development; yield modeling; bioregenerative life support systems; yield components

Share and Cite

MDPI and ACS Style

Aniskina, T.S.; Kudritsky, A.N.; Shchuklina, O.A.; Andreev, N.E.; Baranova, E.N. Millet in Bioregenerative Life Support Systems: Hypergravity Resilience and Predictive Yield Models. Life 2025, 15, 1261. https://doi.org/10.3390/life15081261

AMA Style

Aniskina TS, Kudritsky AN, Shchuklina OA, Andreev NE, Baranova EN. Millet in Bioregenerative Life Support Systems: Hypergravity Resilience and Predictive Yield Models. Life. 2025; 15(8):1261. https://doi.org/10.3390/life15081261

Chicago/Turabian Style

Aniskina, Tatiana S., Arkady N. Kudritsky, Olga A. Shchuklina, Nikita E. Andreev, and Ekaterina N. Baranova. 2025. "Millet in Bioregenerative Life Support Systems: Hypergravity Resilience and Predictive Yield Models" Life 15, no. 8: 1261. https://doi.org/10.3390/life15081261

APA Style

Aniskina, T. S., Kudritsky, A. N., Shchuklina, O. A., Andreev, N. E., & Baranova, E. N. (2025). Millet in Bioregenerative Life Support Systems: Hypergravity Resilience and Predictive Yield Models. Life, 15(8), 1261. https://doi.org/10.3390/life15081261

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop