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Copyright: ©Author(s) 2026.
World J Stem Cells. Sep 26, 2026; 18(9): 125409
Published online Sep 26, 2026. doi: 10.4252/wjsc.125409
Table 1 The lung organoid platform as feasibility evidence for preclinical stem cell validation
Assessment dimension
Study type
Key findings
Evidence level
Limitations
Ref.
Immunomodulatory mechanismMurine lung organoid-macrophage co-cultureBone marrow-derived MSCs suppressed LPS-induced proinflammatory cytokines and NF-κB activation in alveolar and interstitial macrophagesDirect (murine organoid)Not validated in human organoids; culture medium incompatibility limits generalizability[18]
Long-term safety monitoring (tumorigenicity, genetic stability)Theoretical frameworkGenomic approaches (WGS, karyotyping, scRNA-seq) proposed for assessing oncogenic risk of candidate cellsTheoretical (proof-of-principle)No prospective study[65,81,82]
Table 2 Comparison of characteristics among lung organoids derived from different stem cell sources

ASCs
iPSCs
ESCs
Main sourcesAutologous lung tissue from patients (AT2 cells, airway basal cells, etc.)Somatic cell reprogramming (e.g., from fibroblasts, peripheral blood mononuclear cells, etc.)Inner cell mass of blastocysts (allogeneic)
Applicable to pulmonary disease scenariosAirway epithelial reconstruction; local tissue repairModeling of developmental disorders; autologous transplantation following gene correctionModeling of early lung development (e.g., congenital anomalies); investigation of key signaling pathways (FGF, Wnt)
CostDue to limitations in biopsy tissue accessibility and amplification capacity, the cost of personalized sample acquisition is highReprogramming and directed differentiation techniques are complex, with high costs associated with reagents and quality control materialsHigh, associated with acquisition, specialized maintenance, and ethical compliance procedures
AdvantageShort cultivation cycle, high maturity; preserves tissue specificity and epigenetic characteristicsNearly unlimited amplification capacity; multi-lineage differentiation potentialNearly unlimited amplification capacity; multi-lineage differentiation potential; serves as a vital tool for early-stage lung development research
LimitationsCannot differentiate into non-epithelial lineages; may harbor disease-associated genetic alterationsReprogramming carries a tumorigenic risk; there are significant inter-batch variations in cell maturityEthical constraints; immune rejection risk in allogeneic settings; teratoma formation potential
Focus of organoid validationAssessment of local epithelial regenerative potential; functional validation prior to autologous transplantationDifferentiation efficiency and maturity monitoring; long-term genomic stability trackingMonitoring of differentiation efficiency and maturity; evaluation of teratoma risk; basic developmental research
Table 3 Applications of lung organoids in evaluating stem cell therapy
Disease type
Source/organoid type
Stem cell/EV therapy
Evaluation metrics
Key findings
Study design/sample size
Ref.
Pulmonary fibrosis---No published studies have been identified that directly evaluate MSC- or MSC-EV-based therapy in pulmonary fibrosis lung organoid models; current evidence is primarily derived from animal models and 2D culture experiments--
COPD/emphysemaMouse-derived/Lung epithelial progenitor cell-derived organoidshUC-MSC-EVs; hUC-MSCsNumber/size of organoids; AT2/AT1 marker balance; collagen deposition; inflammatory infiltrationhUC-MSC-EVs reduce inflammatory infiltration and collagen deposition, restore the normal number and size of organoids, and rebalance the AT2/AT1 ratioMurine organoids; n = 3-5 mice per group; single exposure model[58]
Acute lung injuryMouse-derived/Lung organoid-macrophage co-culture modelMSCs (bone marrow origin)Macrophage pro-inflammatory function; organoid morphologyMSCs mitigate LPS-induced acute lung injury by inhibiting the pro-inflammatory function of macrophagesMurine organoid-macrophage co-culture; n = 3 independent experiments; 2 organoid donors + ≥ 3 MSC donors[18]
Lung cancerHuman-derived/iPSCs-derived bronchial organoids (BLO); patient-derived LCOsPSC-MSC-derived EVs (loaded with cisplatin)LDH release; CCK8 metabolic activity; apoptosis-related genes (e.g., P53)The empty EVs themselves exhibit cytotoxicity toward both LCO and BLO, suggesting that MSC-EVs may exert non-specific effectsHuman iPSCs-derived organoids; n = 3-4 technical replicates; 2 independent differentiations[33]
Table 4 Comparison of the advantages and limitations among lung organoids, lung-on-a-chip systems, animal models, and two-dimensional cell cultures
Comparison dimensions
Animal model
2D cell culture
Lung organoids
Lung-on-a-chip
Human-derived physiological fidelityModerateLowHighMedium to high
CostLowLowMedium to highModerate
ThroughputLowHighHighModerate
Level of operational difficultyMedium to highLowLowLow
Reproducibility and standardizationModerateHighModerateModerate
Applicability of stem cell therapyModerateLowHighHigh
Core limitationsSignificant species differences; ethical controversiesLack of a physiological gradient; absence of multicellular interactions or an immune microenvironmentNo physiological mechanical stress; lacks functional vascular and nervous systemsHigh technical complexity; incomplete vascularization
Classic applicationsResearch on systemic disease mechanisms; in vivo analysis; systemic toxicity assessmentEarly drug screening; basic research on cellular signaling pathways; large-scale cytotoxicity testingDisease modeling; PDO drug sensitivity testing; research on stem cell differentiation and repair mechanisms; establishment of a precision medicine biobankThe relationship between mechanics and disease; organ-organ interactions; assessment of inhaled nanoparticle toxicity


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