Submitted:
05 August 2026
Posted:
06 August 2026
You are already at the latest version
Abstract
The gastrointestinal tract is a critical system in acute radiation exposure. Severe radiation exposures can deplete epithelial stem and progenitor cells, compromise barrier integrity, alter host-microbe interactions, and drive fluid loss, inflammation, and systemic decline. Mammalian models remain essential for clinical translation, but their cost and complexity constrain sample sizes, statistical power, large-scale mechanistic discovery, and countermeasure screening. The adult Drosophila melanogaster midgut provides a complementary in vivo platform containing intestinal stem cells, absorptive enterocytes, enteroendocrine cells, epithelial junctions, an associated microbiota, and conserved innate immune and injury-response pathways. Direct irradiation studies have demonstrated DNA damage, altered stem cell proliferation and differentiation, epithelial plasticity, apoptosis, autophagy-associated responses, morphological disruption, barrier failure, microbiome changes, and reduced survival. These phenotypes can be modified by genotype, sex, diet, microbial status, antioxidant capacity, and regenerative signaling. This review evaluates the biological rationale, direct evidence, experimental assays, and countermeasure applications supporting the fly midgut as a model of gastrointestinal radiation injury. Although Drosophila has a long history of use in radiation research, our analysis indicates that the fly midgut is best positioned not as a miniature model of clinical gastrointestinal acute radiation syndrome, but as a genetically precise and scalable system for identifying conserved mechanisms and prioritizing interventions for validation in mammalian models.
Keywords:
1. Introduction
2. Drosophila in Radiation Biology: From Mutagenesis to Tissue Injury
3. The Adult Drosophila Midgut as a Model Gastrointestinal Epithelium
3.1. Regional and Cellular Organization
3.2. Regenerative Niche and Conserved Injury-Response Signaling
3.3. Barrier Function, Innate Immunity, and Host-Microbe Interactions
4. Direct Evidence of Radiation-Induced Intestinal Injury in Drosophila.
4.1. DNA Damage and Intestinal Stem Cell Responses
4.2. Altered Differentiation and Epithelial Plasticity
4.3. Epithelial Morphology and Barrier Dysfunction
4.4. Oxidative Stress, Apoptosis, Autophagy, and Immune Signaling
4.5. Organismal Outcomes and Biological Modifiers
5. Experimental Approaches for Measuring Gut Injury and Recovery
5.1. Radiation Exposure and Reporting
5.2. Molecular, Cellular, and Lineage-Resolved Endpoints
5.3. Morphology and Regional Tissue Analysis
5.4. Barrier Function, Immune Activation, and Microbiome Endpoints
5.5. Feeding, Survival, and Integrated Study Design
6. Drosophila as a Platform for Countermeasure Discovery
6.1. Genetic Discovery and Pathway Validation
6.2. Pharmacologic and Dietary Interventions
6.3. Microbial and Fungal Interventions
6.4. Criteria for Translational Prioritization
7. Limitations and Translational Boundaries
7.1. Anatomical and Physiological Divergence
7.2. Dose, Radiation Quality, and Dosimetry
7.3. Biological Context and Reproducibility
7.4. Endpoint Attribution and Translational Claims
8. Future Directions
9. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Dörr, H.; Meineke, V. Acute radiation syndrome caused by accidental radiation exposure: therapeutic principles. BMC Med. 2011, 9, 126. [Google Scholar] [CrossRef] [PubMed]
- Booth, C.; Tudor, G.; Tudor, J.; Katz, B.P.; MacVittie, T.J. Acute gastrointestinal syndrome in high-dose irradiated mice. Health Phys. 2012, 103(4), 383–399. [Google Scholar] [CrossRef] [PubMed]
- Paris, F.; Fuks, Z.; Kang, A.; Capodieci, P.; Juan, G.; Ehleiter, D.; et al. Endothelial apoptosis as the primary lesion initiating intestinal radiation damage in mice. Science 2001, 293(5528), 293–297. [Google Scholar] [CrossRef] [PubMed]
- Kaur, A.; Ten Have, G.A.M.; Hritzo, B.; Deutz, N.E.P.; Olsen, C.; Moroni, M. Morphological and functional impairment in the gut in a partial body irradiation minipig model of GI-ARS. Int. J. Radiat. Biol. 2020, 96(1), 112–128. [Google Scholar] [CrossRef] [PubMed]
- MacVittie, T.J.; Farese, A.M.; Bennett, A.; Gelfond, D.; Shea-Donohue, T.; Tudor, G.; et al. The acute gastrointestinal subsyndrome of the acute radiation syndrome: a rhesus macaque model. Health Phys. 2012, 103(4), 411–426. [Google Scholar] [CrossRef] [PubMed]
- MacVittie, T.J.; Farese, A.M.; Parker, G.A.; Jackson, W., 3rd; Booth, C.; Tudor, G.L.; et al. The gastrointestinal subsyndrome of the acute radiation syndrome in rhesus macaques: a systematic review of the lethal dose-response relationship with and without medical management. Health Phys. 2019, 116(3), 305–338. [Google Scholar] [CrossRef] [PubMed]
- Winters, T.A.; Marzella, L.; Molinar-Inglis, O.; Price, P.W.; Han, N.C.; Cohen, J.E.; et al. Gastrointestinal acute radiation syndrome: mechanisms, models, markers, and medical countermeasures. Radiat. Res. 2024, 201(6), 628–646. [Google Scholar] [CrossRef] [PubMed]
- Freeman, M.L. Gastrointestinal acute radiation syndrome: current knowledge and perspectives. Cell Death Discov. 2025, 11, 235. [Google Scholar] [CrossRef] [PubMed]
- Jiang, H.; Patel, P.H.; Kohlmaier, A.; Grenley, M.O.; McEwen, D.G.; Edgar, B.A. Cytokine/Jak/Stat signaling mediates regeneration and homeostasis in the Drosophila midgut. Cell 2009, 137(7), 1343–1355. [Google Scholar] [CrossRef] [PubMed]
- Zhou, F.; Rasmussen, A.; Lee, S.; Agaisse, H. The Upd3 cytokine couples environmental challenge and intestinal stem cell division through modulation of JAK/STAT signaling in the stem cell microenvironment. Dev. Biol. 2013, 373(2), 383–393. [Google Scholar] [CrossRef] [PubMed]
- Pickert, G.; Neufert, C.; Leppkes, M.; Zheng, Y.; Wittkopf, N.; Warntjen, M.; et al. STAT3 links IL-22 signaling in intestinal epithelial cells to mucosal wound healing. J. Exp. Med. 2009, 206(7), 1465–1472. [Google Scholar] [CrossRef] [PubMed]
- Burnett, A.F.; Biju, P.G.; Lui, H.; Hauer-Jensen, M. Oral interleukin 11 as a countermeasure to lethal total-body irradiation in a murine model. Radiat. Res. 2013, 180(6), 595–602. [Google Scholar] [CrossRef] [PubMed]
- Biteau, B.; Hochmuth, C.E.; Jasper, H. JNK activity in somatic stem cells causes loss of tissue homeostasis in the aging Drosophila gut. Cell Stem Cell 2008, 3(4), 442–455. [Google Scholar] [CrossRef] [PubMed]
- Chakrabarti, S.; Poidevin, M.; Lemaitre, B. The Drosophila MAPK p38c regulates oxidative stress and lipid homeostasis in the intestine. PLoS Genet 2014, 10(9), e1004659. [Google Scholar] [CrossRef] [PubMed]
- Munshi, A.; Ramesh, R. Mitogen-activated protein kinases and their role in radiation response. Genes Cancer 2013, 4(9–10), 401–408. [Google Scholar] [CrossRef] [PubMed]
- Biteau, B.; Jasper, H. EGF signaling regulates the proliferation of intestinal stem cells in Drosophila. Development 2011, 138(6), 1045–1055. [Google Scholar] [CrossRef] [PubMed]
- Jiang, H.; Grenley, M.O.; Bravo, M.J.; Blumhagen, R.Z.; Edgar, B.A. EGFR/Ras/MAPK signaling mediates adult midgut epithelial homeostasis and regeneration in Drosophila. Cell Stem Cell 2011, 8(1), 84–95. [Google Scholar] [CrossRef] [PubMed]
- Dubé, P.E.; Liu, C.Y.; Girish, N.; Washington, M.K.; Polk, D.B. Pharmacological activation of epidermal growth factor receptor signaling inhibits colitis-associated cancer in mice. Sci. Rep. 2018, 8, 9119. [Google Scholar] [CrossRef] [PubMed]
- Zhang, X.; Bandyopadhyay, S.; Araujo, L.P.; Tong, K.; Flores, J.; Laubitz, D.; et al. Elevating EGFR-MAPK program by a nonconventional Cdc42 enhances intestinal epithelial survival and regeneration. JCI Insight 2020, 5(16), e135923. [Google Scholar] [CrossRef] [PubMed]
- Lin, G.; Xu, N.; Xi, R. Paracrine Wingless signalling controls self-renewal of Drosophila intestinal stem cells. Nature 2008, 455(7216), 1119–1123. [Google Scholar] [CrossRef] [PubMed]
- Cordero, J.B.; Stefanatos, R.K.; Scopelliti, A.; Vidal, M.; Sansom, O.J. Inducible progenitor-derived Wingless regulates adult midgut regeneration in Drosophila. EMBO J. 2012, 31(19), 3901–3917. [Google Scholar] [CrossRef] [PubMed]
- Tian, A.; Benchabane, H.; Wang, Z.; Ahmed, Y. Regulation of stem cell proliferation and cell fate specification by Wingless/Wnt signaling gradients enriched at adult intestinal compartment boundaries. PLoS Genet 2016, 12(2), e1005822. [Google Scholar] [CrossRef] [PubMed]
- Barker, N.; van Es, J.H.; Kuipers, J.; Kujala, P.; van den Born, M.; Cozijnsen, M.; et al. Identification of stem cells in small intestine and colon by marker gene Lgr5. Nature 2007, 449(7165), 1003–1007. [Google Scholar] [CrossRef] [PubMed]
- Metcalfe, C.; Kljavin, N.M.; Ybarra, R.; de Sauvage, F.J. Lgr5-positive stem cells are indispensable for radiation-induced intestinal regeneration. Cell Stem Cell 2014, 14(2), 149–159. [Google Scholar] [CrossRef] [PubMed]
- Ohlstein, B.; Spradling, A. Multipotent Drosophila intestinal stem cells specify daughter cell fates by differential Notch signaling. Science 2007, 315(5814), 988–992. [Google Scholar] [CrossRef] [PubMed]
- Guo, Z.; Ohlstein, B. Bidirectional Notch signaling regulates Drosophila intestinal stem cell multipotency. Science 2015, 350(6263), aab0988. [Google Scholar] [CrossRef] [PubMed]
- van Es, J.H.; van Gijn, M.E.; Riccio, O.; van den Born, M.; Vooijs, M.; Begthel, H.; et al. Notch/gamma-secretase inhibition turns proliferative cells in intestinal crypts and adenomas into goblet cells. Nature 2005, 435(7044), 959–963. [Google Scholar] [CrossRef] [PubMed]
- VanDussen, K.L.; Carulli, A.J.; Keeley, T.M.; Patel, S.R.; Puthoff, B.J.; Magness, S.T.; et al. Notch signaling modulates proliferation and differentiation of intestinal crypt base columnar stem cells. Development 2012, 139(3), 488–497. [Google Scholar] [CrossRef] [PubMed]
- Park, M.; Kwon, J.; Youk, H.; Shin, U.S.; Han, Y.H.; Kim, Y. Valproic acid protects intestinal organoids against radiation via NOTCH signaling. Cell Biol. Int. 2021, 45(7), 1523–1532. [Google Scholar] [CrossRef] [PubMed]
- Karpowicz, P.; Perez, J.; Perrimon, N. The Hippo tumor suppressor pathway regulates intestinal stem cell regeneration. Development 2010, 137(24), 4135–4145. [Google Scholar] [CrossRef] [PubMed]
- Shaw, R.L.; Kohlmaier, A.; Polesello, C.; Veelken, C.; Edgar, B.A.; Tapon, N. The Hippo pathway regulates intestinal stem cell proliferation during Drosophila adult midgut regeneration. Development 2010, 137(24), 4147–4158. [Google Scholar] [CrossRef] [PubMed]
- Staley, B.K.; Irvine, K.D. Warts and Yorkie mediate intestinal regeneration by influencing stem cell proliferation. Curr. Biol. 2010, 20(17), 1580–1587. [Google Scholar] [CrossRef] [PubMed]
- Gregorieff, A.; Liu, Y.; Inanlou, M.R.; Khomchuk, Y.; Wrana, J.L. Yap-dependent reprogramming of Lgr5-positive stem cells drives intestinal regeneration and cancer. Nature 2015, 526(7575), 715–718. [Google Scholar] [CrossRef] [PubMed]
- Yui, S.; Azzolin, L.; Maimets, M.; Pedersen, M.T.; Fordham, R.P.; Hansen, S.L.; et al. YAP/TAZ-dependent reprogramming of colonic epithelium links ECM remodeling to tissue regeneration. Cell Stem Cell 2018, 22(1), 35–49.e7. [Google Scholar] [CrossRef] [PubMed]
- Lee, H.J.; Lee, S.H.; Lee, J.H.; Kim, Y.; Seong, K.M.; Jin, Y.W.; et al. Role of commensal microbes in the γ-ray irradiation-induced physiological changes in Drosophila melanogaster. Microorganisms 2021, 9(1), 31. [Google Scholar] [CrossRef] [PubMed]
- Sannino, D.R.; Dobson, A.J.; Edwards, K.; Angert, E.R.; Buchon, N. The Drosophila melanogaster gut microbiota provisions thiamine to its host. mBio 2018, 9(2), e00155-18. [Google Scholar] [CrossRef] [PubMed]
- Muller, H.J. Artificial transmutation of the gene. Science 1927, 66(1699), 84–87. [Google Scholar] [CrossRef] [PubMed]
- Muller, H.J. The production of mutations by X-rays. Proc. Natl. Acad. Sci. U S A 1928, 14(9), 714–726. [Google Scholar] [CrossRef] [PubMed]
- Krause, E.H. High-altitude research with V-2 rockets. Science 1947, 106(2745), 122. [Google Scholar] [PubMed]
- Sudmeier, L.J.; Howard, S.P.; Ganetzky, B. A Drosophila model to investigate the neurotoxic side effects of radiation exposure. Dis. Model Mech. 2015, 8(7), 669–677. [Google Scholar] [CrossRef] [PubMed]
- Buchon, N.; Osman, D.; David, F.P.A.; Fang, H.Y.; Boquete, J.P.; Deplancke, B.; et al. Morphological and molecular characterization of adult midgut compartmentalization in Drosophila. Cell Rep. 2013, 3(5), 1725–1738. [Google Scholar] [CrossRef] [PubMed]
- Marianes, A.; Spradling, A.C. Physiological and stem cell compartmentalization within the Drosophila midgut. eLife 2013, 2, e00886. [Google Scholar] [CrossRef] [PubMed]
- Pyo, J.H.; Park, J.S.; Na, H.J.; Jeon, H.J.; Lee, S.H.; Kim, J.G.; et al. Functional modification of Drosophila intestinal stem cells by ionizing radiation. Radiat. Res. 2014, 181(4), 376–386. [Google Scholar] [CrossRef] [PubMed]
- Sharma, A.; Akagi, K.; Pattavina, B.; Wilson, K.A.; Nelson, C.; Watson, M.; et al. Musashi expression in intestinal stem cells attenuates radiation-induced decline in intestinal permeability and survival in Drosophila. Sci. Rep. 2020, 10, 19080. [Google Scholar] [CrossRef] [PubMed]
- Xing, Y.; Su, T.T.; Ruohola-Baker, H. Tie-mediated signal from apoptotic cells protects stem cells in Drosophila melanogaster. Nat. Commun. 2015, 6, 7058. [Google Scholar] [CrossRef] [PubMed]
- Qian, Q.; Nagai, H.; Sanaki, Y.; Hayashi, M.; Kimura, K.; Nakajima, Y.; et al. Xrp1 drives damage-induced cellular plasticity of enteroendocrine cells in the adult Drosophila midgut. Development 2026, 153(2), dev205225. [Google Scholar] [CrossRef] [PubMed]
- Trinca, T.M.; Malik, B.R. Irradiation of Drosophila melanogaster leads to increased autophagy in multiple adult tissues. J. Exp. Neurol. 2024, 5(4), 167–171. [Google Scholar] [CrossRef]
- Chen, H.J.; Li, Q.; Nirala, N.K.; Ip, Y.T. The Snakeskin-Mesh complex of smooth septate junction restricts Yorkie to regulate intestinal homeostasis in Drosophila. Stem Cell Rep. 2020, 14(5), 828–844. [Google Scholar] [CrossRef] [PubMed]
- Martins, R.R.; McCracken, A.W.; Simons, M.J.P.; Henriques, C.M.; Rera, M. How to catch a Smurf? Ageing and beyond: in vivo assessment of intestinal permeability in multiple model organisms. Bio Protoc. 2018, 8(3), e2722. [Google Scholar] [CrossRef] [PubMed]
- Volpe, R.P.; Sen, A.; Sharma, A.; Kathiresan, V.; Hoffman, B.M.; Cox, R.T. Prophylactically feeding manganese to Drosophila confers sex-specific protection from acute ionizing radiation independent of MnSOD2 levels. Antioxidants 2025, 14(2), 134. [Google Scholar] [CrossRef] [PubMed]
- Volpe, R.P.; Hwang, H.J.; Cox, R.T. Feeding Drosophila highly radioresistant fungi improves survival and gut morphology following acute gamma radiation exposure. Sci. Rep. 2026, 16, 1855. [Google Scholar] [CrossRef] [PubMed]
- Park, J.S.; Na, H.J.; Pyo, J.H.; Jeon, H.J.; Kim, Y.S.; Yoo, M.A. Requirement of ATR for maintenance of intestinal stem cells in aging Drosophila. Aging 2015, 7(5), 307–318. [Google Scholar] [CrossRef] [PubMed]
- Park, J.S.; Jeon, H.J.; Pyo, J.H.; Kim, Y.S.; Yoo, M.A. Deficiency in DNA damage response of enterocytes accelerates intestinal stem cell aging in Drosophila. Aging 2018, 10(3), 322–338. [Google Scholar] [CrossRef] [PubMed]
- Bar, S.; Hilsabeck, T.A.U.; Pattavina, B.; López-Domínguez, J.A.; Basisty, N.; Bons, J.; et al. Inhibition of the metalloprotease ADAM19 as a novel senomorphic strategy to ameliorate gut permeability and senescence markers by modulating senescence-associated secretory phenotype (SASP). Aging 2025, 17(3), 757–777. [Google Scholar] [CrossRef] [PubMed]
- Zhang, S.; Wang, Z.; Jiang, J.; Feng, G.; Fan, S. Lactobacillus reuteri’s multifaceted role in mitigating ionizing radiation-induced injury in Drosophila melanogaster. Food Funct. 2024, 15(7), 3522–3538. [Google Scholar] [CrossRef] [PubMed]
- Diegelmann, S.; Jansen, A.; Jois, S.; Kastenholz, K.; Velo Escarcena, L.; Strudthoff, N.; et al. The CApillary FEeder assay measures food intake in Drosophila melanogaster. J. Vis. Exp. 2017, (121), 55024. [Google Scholar] [CrossRef] [PubMed]
- Zhdanova, N.N.; Zakharchenko, V.A.; Vember, V.V.; Nakonechnaya, L.T. Fungi from Chernobyl: mycobiota of the inner regions of the containment structures of the damaged nuclear reactor. Mycol. Res. 2000, 104(12), 1421–1426. [Google Scholar] [CrossRef]
- Trinca, T.M.; de Navascués, J. Drosophila melanogaster: an old and future ally to radiobiology. J. Radiat. Res. 2025, 66(6), 579–593. [Google Scholar] [CrossRef] [PubMed]
| Injury-response module | Drosophila pathway/readouts | Mammalian analog | Relevance to GI radiation injury | References |
|---|---|---|---|---|
| Cytokine-driven epithelial repair | Upd2/Upd3-Domeless-Hopscotch-Stat92E; pSTAT/Stat92E reporters, upd3, Socs36E, mitotic ISC counts | IL-6-family cytokines/gp130-JAK/STAT3; pSTAT3, SOCS3, IL-6/IL-11 | Converts epithelial and microbial stress into regenerative signaling; helps determine whether the response resolves injury or amplifies inflammation. | [9,10,11,12] |
| Stress-activated MAPK signaling | JNK/Basket/AP-1 and p38-like responses; puc-lacZ, pJNK, ROS assays, AP-1 targets | JNK/p38/AP-1 stress signaling | Senses ROS, DNA damage, infection, and dying cells; may drive apoptosis, inflammatory signaling, compensatory proliferation, or repair according to timing and intensity. | [13,14,15,16] |
| EGFR/Ras/ERK repair competence | Vein, Spitz, and Keren; dpERK, ISC proliferation, epithelial renewal assays | EGF-family ligands/EGFR/Ras/ERK; pERK, Ki-67, wound-repair readouts | Supports epithelial restitution, proliferative competence of surviving progenitors, and regenerative recovery after injury. | [16,17,18,19] |
| Wnt/Wingless stem cell maintenance | Wingless/Armadillo; Wg targets, ISC maintenance, regional patterning | Wnt/beta-catenin; LGR5, AXIN2, OLFM4, crypt regeneration | Maintains regenerative epithelial compartments vulnerable to radiation and influences stem cell survival and repair capacity. | [20,21,22,23,24] |
| Notch/Delta lineage allocation | Delta-Notch; Notch reporters, enterocyte versus enteroendocrine balance | DLL/Jagged-Notch-HES/HEY; absorptive versus secretory lineage markers | Coordinates differentiation after injury so that epithelial replacement restores appropriate cell types rather than disordered repair. | [25,26,27,28,29] |
| Hippo/Yorkie growth and plasticity control | Hippo/Yorkie; nuclear Yki, diap1, expanded, ISC proliferation | Hippo/YAP/TAZ; nuclear YAP/TAZ, CTGF, CYR61 | Links epithelial stress to growth, plasticity, and wound-repair states; excessive activation may promote hyperplasia or dysplasia. | [30,31,32,33,34] |
| Innate immune and microbial sensing | Imd/Relish and Toll/Dif; Diptericin, Drosomycin, immune reporters | TLR/NOD/TNF/IL-1-IKK-NF-kappaB; cytokines and antimicrobial peptides | Connects dysbiosis and microbial products to epithelial inflammation, antimicrobial defense, barrier injury, and systemic decline. | [35,44] |
| Barrier and junctional integrity | Smooth septate junctions; Mesh, Ssk, Coracle, Dlg; Smurf and permeability assays | Tight and adherens junction networks; claudins, occludin, ZO-1, E-cadherin; TEER and dextran permeability | Provides a functional readout of epithelial failure and risk of microbial translocation, dehydration, inflammatory amplification, and mortality. | [44,48,49] |
| Oxidative-stress defense | Keap1/CncC; gstD-GFP, antioxidant gene induction, ROS assays | KEAP1/NRF2; HO-1, NQO1, GCLC/GCLM, glutathione pathways | Controls redox resilience after radiation-induced ROS and may mediate diet-, microbiome-, fungal-, or drug-associated protection. | [14,35,50,51] |
| DNA damage, apoptosis, and repair fate | p53, gamma-H2Av, caspases, TUNEL, mitotic arrest, ISC proliferation | p53, gamma-H2AX, p21, caspase-3, DNA-repair checkpoints | Determines whether irradiated cells arrest, repair, die, or re-enter regenerative programs needed for tissue recovery. | [43,44,45,46,47] |
| Study | Biological context | Radiation protocol | Analysis interval | Gut-relevant endpoints | Modifier or intervention | Principal finding | Interpretive limitation |
|---|---|---|---|---|---|---|---|
| Core intestinal injury and mechanism studies | |||||||
| Pyo et al. [43] | Seven-day-old adults; ISC-focused analysis. | Gamma rays; 2 or 10 Gy; 2.25 Gy/min; acute whole-body exposure. | Acute post-exposure; assay-specific. | gamma-H2Av, 8-oxo-dG, ISC mitosis, JNK/AKT signaling, differentiation, centrosome number. | Dose comparison. | 2 Gy increased ISC proliferation despite persistent damage, abnormal differentiation, and centrosome amplification; 10 Gy reduced proliferative capacity. | Cellular and lineage study without direct permeability or survival endpoints. |
| Xing et al. [45] | Young adults; posterior midgut plus germline stem cell model. | Ionizing radiation; 50 Gy acute whole-body exposure. | Early apoptosis through approximately 6 days. | Differentiated-cell versus esg-positive progenitor apoptosis; post-irradiation ISC lineage output. | Cell-type susceptibility; Pvf1-Tie-bantam-Hid survival axis. | ISCs and enteroblasts were less apoptosis-prone than differentiated cells and retained multilineage output, although post-irradiation clones were smaller. | Detailed causal analysis of the survival axis was performed mainly in the germline; no barrier endpoint. |
| Park et al. [52] | Adult flies; ISC/enteroblast-specific ATM or ATR RNAi. | Cesium-137 gamma rays; 5 Gy; 2.55 Gy/min. | 1 hour after irradiation; longer genetic homeostasis assays. | pS/TQ and gamma-H2AvD in progenitors; ISC abundance and EdU incorporation in complementary assays. | ATM and/or ATR depletion in ISCs and enteroblasts. | Irradiation activated progenitor DNA-damage responses, with stronger dependence on ATR; ATM/ATR depletion impaired ISC maintenance and proliferation. | Radiation served mainly as an acute DNA-damage challenge; longer phenotypes were not longitudinal post-irradiation recovery measures. |
| Park et al. [53] | Adult flies; enterocyte-specific depletion of DNA-damage-response genes. | Cesium-137 gamma rays; 5 Gy; 2.55 Gy/min. | 1 hour after irradiation; chronic knockdown assays over days. | gamma-H2AvD in enterocytes and progenitors; enterocyte death, ISC proliferation, and gut-aging phenotypes in complementary assays. | Enterocyte-specific Mre11, Rad50, Nbs1, ATM, ATR, Chk1, or Chk2 RNAi. | Acute irradiation activated DNA-damage responses in enterocytes and progenitors; chronic enterocyte DDR deficiency promoted enterocyte loss and non-autonomous ISC hyperproliferation. | The major tissue-aging phenotypes arose from chronic genetic DDR deficiency, not a longitudinal irradiated-recovery experiment. |
| Sharma et al. [44] | Five-day-old adults of both sexes; 156 DGRP lines and ISC-specific manipulations. | 320-kV X-rays; 100 Gy acute or 4 x 25 Gy every other day. | 30 minutes to 14 days. | gamma-H2Av, apoptosis, hid/reaper/upd3 and antimicrobial genes, pH3 and Delta-positive ISCs, gut length, Smurf permeability, survival. | Natural variation; ISC-specific musashi loss or gain; Cyclin E. | Radiation caused persistent loss of regenerative capacity and late barrier failure; musashi or forced ISC proliferation reduced permeability and modestly improved survival. | High-dose whole-body model; survival is nonspecific, although intestine-restricted genetics strengthen gut attribution. |
| Trinca and Malik [47] | Three- to six-day-old adults; mCherry-Atg8 reporter in enterocytes. | Cesium-137 gamma rays; 150 Gy; 0.43 Gy/min. | 1 day. | mCherry-Atg8 abundance and puncta in posterior-midgut enterocytes. | None. | Irradiation increased an autophagy-associated reporter throughout much of the midgut. | Reporter abundance and puncta do not establish autophagic flux, functional direction, or barrier preservation. |
| Qian et al. [46] | Adult enteroendocrine lineage; lineage tracing and single-cell transcriptomics. | X-rays; 50 or 100 Gy; acute whole-body exposure. | Hours after exposure through lineage-tracing endpoints. | Enteroendocrine lineage conversion; Prospero, Delta, progenitor genes, Xrp1, upd3, and transcriptional state. | Enteroendocrine-specific Xrp1 or upd3 loss; Xrp1 overexpression. | Radiation induced enteroendocrine-cell plasticity; Xrp1 and upd3 were required, and Xrp1 was sufficient to induce progenitor-associated gene expression. | No barrier or survival endpoint; durable functional contribution of converted cells remains unresolved. |
| Biological modifiers and candidate interventions | |||||||
| Lee et al. [35] | Third-instar larvae followed into adulthood; conventional and axenic cohorts. | Cesium-137 gamma rays; 0.1 Gy at 0.67 cGy/min or 5 Gy at 3.25 Gy/min. | Development through adult life; selected assays near 14 days. | Microbial abundance and diversity, intestinal ROS, mitochondrial physiology, lifespan, locomotion, and reproduction. | Conventional versus axenic microbial state. | Irradiation altered microbial abundance and diversity; axenic flies showed greater delayed oxidative and mitochondrial responses and dose-dependent lifespan loss. | Developmental exposure confounds mature-gut injury with altered development; several outcomes are organismal rather than gut-specific. |
| Zhang et al. [55] | Adult females; probiotic feeding. | Gamma rays; 100 Gy; source and dose rate NR. | Six days of prefeeding, continued after exposure; follow-up to approximately 14 days. | Survival, Smurf permeability, intestinal ROS and oxidative markers, ISC abundance, microbiota, and AMPK/mTOR/autophagy-associated readouts. | Lactobacillus reuteri DSM 17938 and/or ATCC PTA-6475, 1 x 10^9 CFU/mL, before and after irradiation. | L. reuteri improved survival and attenuated several intestinal oxidative, permeability, and regenerative abnormalities; responses varied by preparation. | Combined prophylactic and post-exposure dosing prevents clean protector-versus-mitigator assignment; intestine-specific causality was not established. |
| Bar et al. [54] | Five-day-old adult females; enterocyte-specific meltrin RNAi. | 320-kV, 10-mA X-rays; 100 Gy over 10 minutes. | 5 to 14 days, depending on endpoint. | Smurf permeability, gamma-H2Av, beta-galactosidase, upd3, apoptosis-associated staining, and lifespan. | Enterocyte-specific meltrin RNAi; 50 micromolar batimastat (BB-94). | meltrin knockdown reduced post-irradiation permeability, DNA-damage and senescence-associated markers; BB-94 also reduced permeability. | BB-94 is broad-spectrum; the marker panel does not alone prove canonical mammalian senescence; fly lifespan was not improved. |
| Volpe et al. [50] | Newly eclosed adult males and females; liquid-diet metal prefeeding. | Vendor-calibrated cesium-137 gamma rays; 700 or 1000 Gy; approximately 12.35 Gy/min. | Longitudinal survival and whole-adult biochemical analysis; MnSOD2 at 24 hours. | No direct gut-specific endpoint; survival, sex effects, MnSOD2 abundance, and whole-animal manganese speciation. | 5 or 10 micromolar MnCl2 for 2 days before irradiation; copper and nickel controls. | MnCl2 improved male survival at selected doses without increasing MnSOD2; spectroscopy implicated nonenzymatic high-symmetry manganese-metabolite complexes. | Establishes organismal radioprotection, not gastrointestinal protection; survival and biochemical readouts are whole-animal. |
| Volpe et al. [51] | Newly eclosed adult males and females; fungal prefeeding; R4 midgut analysis. | Vendor-calibrated cesium-137 gamma rays; 700 or 1000 Gy; approximately 12.62 Gy/min. | 2 days for gut morphology; longitudinal survival. | Enterocyte nuclear morphology, actin-defined cellular boundaries and epithelial holes, and sex-specific survival. | Two-day prefeeding with Aureobasidium pullulans or Rhodotorula taiwanensis, irradiated or nonirradiated. | A. pullulans improved male survival and nuclear morphology but did not fully preserve actin architecture; R. taiwanensis was not protective and could be detrimental. | No direct permeability assay; high whole-body dose; effects were endpoint-specific and the protective mechanism remains unresolved. |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).