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Method Article

Generation of Aneuploid Human Induced Pluripotent Stem Cells from Primary Amniotic Fluid Cells via Episomal Plasmid Electroporation

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DOI:

10.3791/71975

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September 3rd, 2026

In This Article

Summary

This protocol provides a reproducible method for generating integration-free aneuploid human iPSCs from primary amniotic fluid cells using episomal plasmid electroporation. It optimizes delivery and culture conditions to stabilize chromosomal abnormalities, offering a practical platform for creating disease-specific models for downstream research and clinical applications.

Abstract

The generation of patient-specific induced pluripotent stem cells (iPSCs) from amniotic fluid cells (AFCs) carrying defined chromosomal aneuploidies provides a powerful platform for modeling genetic disorders. However, establishing a reliable and reproducible reprogramming pipeline for aneuploid AFCs remains technically challenging due to the intrinsic genomic instability and variable proliferative capacity of these cells. Here, we present a comprehensive, non-integrating method for generating aneuploid human iPSCs from primary AFCs using episomal plasmid electroporation. This protocol details the complete workflow, encompassing cell thawing and expansion with a gradual media adaptation strategy, optimized plasmid delivery via electroporation system, sequential post-electroporation culture with mesenchymal-to-epithelial transition (MET)-directed media changes, and mechanical colony picking based on defined morphological criteria. We further describe validation procedures, including immunofluorescence staining for core pluripotency markers, G-banding karyotype analysis to confirm aneuploid karyotype maintenance, and PCR-based episomal vector clearance verification. This feeder-free, integration-free protocol yields aneuploid iPSC lines suitable for disease modeling, drug screening, and studies of chromosome biology.

Introduction

The advent of induced pluripotent stem cell technology has transformed regenerative medicine, disease modeling, and drug discovery by enabling the generation of patient-specific pluripotent cells without the ethical concerns associated with human embryonic stem cells (hESCs). The conceptual foundation of cellular reprogramming originated from Gurdon's demonstration of somatic cell nuclear transfer1, followed by the establishment of embryonic stem cells2,3,4 and ultimately the development of induced pluripotency5 through....

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Protocol

All procedures involving human amniotic fluid samples were conducted in accordance with the Declaration of Helsinki and were approved by the Institutional Review Board (IRB)/Human Research Ethics Committee of Peking University Third Hospital (Protocol No. M2023406). The aneuploid samples were sourced from the Biobank of the Center for Reproductive Medicine at Peking University Third Hospital, a state-certified clinical repository specializing in human developmental and reproductive resources. These specimens consist of residual amniotic fluid originally collected during routine amniocentesis for clinical prenatal diagnosis, which would have otherwise been discarded. W....

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Results

Morphological progression during reprogramming

Primary amniotic fluid cells displayed heterogeneous morphologies, including E-type and F-type cells (Figure 1A). F-type cells should be expanded and used for reprogramming. Following electroporation of AFCs with Epi5 episomal plasmids, a characteristic sequence of morphological changes is observed. On Day 0, AFCs display typical spindle-shaped, fibroblast-like morphology. By Day 3–5, the first morphological evidence .......

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Discussion

This protocol describes a non-integrating, feeder-free method for generating aneuploid human iPSCs from amniotic fluid cells using episomal plasmids delivered via electroporation. Several critical steps determine the success of reprogramming. First, the quality of the starting AFC population is paramount. In clinical cytogenetic laboratories, AFCs are typically expanded in media aiming to accelerate cell proliferation for prenatal karyotype analysis rather than long-term culturing. The impact on subsequent .......

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Disclosures

The authors declare that they have no competing financial interests. The schematic illustration in Figure 7A was generated using AI-assisted tools and subsequently reviewed and modified by the authors.

Acknowledgements

This work was supported by the National Key Research and Development Program of China (Grant No. 2022YFA0913300) and the Peking University Third Hospital Clinical Key Project (Grant No. BYSY2022054) to Jianying Guo.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
0.25% Trypsin-EDTAThermo Fisher (Gibco)25200056Cell dissociation for AFC passaging
100bp Plus II DNA LadderTransGen BiotechBM321-01DNA Ladder
-80 C FreezerThermo FisherFDE60086fvLong-term plasmid DNA and sample storage
Accutase Cell Detachment SolutionStemCell Technologies07920Gentle iPSC dissociation into small clumps
Acetic acid (glacial)Sigma-Aldrich338826Fixative component for karyotyping (MeOH:AcOH 3:1)
AgaroseSigma-AldrichA9539Gel electrophoresis for PCR products (2%)
AmnioType-1 MediumVivaCell BIOSCIENCESC3620-0100Primary AFC culture medium
Automated Cell Counter / HemocytometerCountstarTC20Viable cell counting with trypan blue exclusion
Bright-Field Microscope (100x oil)ZeissAxiovert5Metaphase spread analysis for karyotyping
Centrifuge (swing-bucket rotor)Eppendorf5810RCell pelleting at 300 x g
Class II Biosafety CabinetESCOAC2-4S8-CNSterile workspace for all cell culture operations
CO2 Incubator (humidified)There scientific3131Maintain 37 C, 5% CO2 environment
Colcemid (10 ug/mL)Capricorn scientificCOL-HMetaphase arrest for karyotyping (0.1 ug/mL, 2-4 h)
CryoStor CS10 Cell Freezing MediumSTEMCELL Technologies07959Cell Freezing Medium
DAPIMerck Millipor10236276001Nuclear stainning
DMEM (high glucose)Thermo Fisher (Gibco)11965092Base for fibroblast culture (FC) medium
DMEM/F-12Thermo Fisher (Gibco)11330032Matrigel dilution buffer (1:200)
DPBS without Ca2+/Mg2+Thermo Fisher (Gibco)14190250Washing buffer
Episomal plasmid (pCE-GFP)Addgene#41858Non-integrating reprogramming vector (GFP control)
Episomal plasmid (pCXLE-hOCT3/4-shp53-F)Addgene#27077Non-integrating reprogramming vector (OCT4 + shp53)
Episomal plasmid (pCXLE-hSK)Addgene#27078Non-integrating reprogramming vector (SOX2 + KLF4)
Episomal plasmid (pCXLE-hUL)Addgene#27080Non-integrating reprogramming vector (L-MYC + LIN28)
Fetal Bovine SerumHyCloneSH30071.03Serum supplement for AFC expansion (FC medium, 15%)
Fluorescence MicroscopeLeicaSp8TRA-1-60/81 live-staining and IF visualization
Gel Electrophoresis SystemBio-Rad164-5056Agarose gel analysis of PCR products
Gelatin (0.1%)Sigma-AldrichG1393Culture vessel coating for AFC attachment
Genomic DNA Extraction KitTIANGEN4992199PCR-quality DNA isolation from iPSCs
Giemsa Stain SolutionSigma-AldrichGS500Chromosome G-banding stain (5%)
GlutaMAX (100x)Thermo Fisher (Gibco)35050061Supplement for FC medium
Inverted Phase-Contrast MicroscopeZeissAxiovert5Daily monitoring of culture and colony morphology
Liquid Nitrogen Storage TankThermo ScientificCY50985Cryopreservation of cells
Matrigel Basement Membrane MatrixCorning354230Culture vessel coating for iPSC attachment
Methanol (anhydrous)Sigma-Aldrich34860Fixative component for karyotyping (MeOH:AcOH 3:1)
NANOG Antibody (Rabbit)Abcamab109250Immunofluorescence; nuclear pluripotency marker
Neon NxT Electroporation Kit (100 uL)Thermo Fisher (Invitrogen)N10025Electroporation; contains Buffers R, T, E and 100 uL tips
Neon NxT Electroporation SystemThermo Fisher (Invitrogen)NEON18SDelivery of episomal plasmids via electroporation
Non-Essential Amino Acids (NEAA, 100x)Thermo Fisher (Gibco)11140050Supplement for FC medium
OCT4 Antibody (Rabbit)AbclonalA7920Immunofluorescence; nuclear pluripotency marker
PCR Master Mix (high fidelity)TIANGEN4992920Episomal clearance verification by PCR
pCXWB-EBNA1Addgene#37624Non-replicating episomal expression of EBNA1
PE anti-human TRA-1-81 AntibodyBioLegend330708Pluripotency staining
Penicillin-Streptomycin (100x)Thermo Fisher (Gibco)15140122Antibiotic supplement (NOT used post-electroporation)
Phalloidin-iFluor 647 ReagentAbcamab176759F-actin (actin filaments) labeling
Potassium chloride (KCl)Sigma-AldrichP5405Hypotonic solution for karyotyping (0.075 M)
Real-time PCR SystemThermo Fisher ScientificQuantStudio3qPCR for marker gene verification
Sodium Butyrate (NaB)Sigma-AldrichB5887HDAC inhibitor; 25-100 uM for enhancing reprogramming
SOX2 Antibody (Mouse)R&D SystemsMAB2018Immunofluorescence; nuclear pluripotency marker
SSEA-4 AntibodyBioLegend330408Immunofluorescence; cell surface pluripotency marker
StereomicroscopeNikonSMZ745Mechanical colony picking under magnification
TeSR-E8STEMCELL Technologies05990Feeder-free iPSC maintenance medium
TRA-1-60 AntibodyMerck MilliporMAB4360Pluripotency staining
Trans DNA Marker IITransGen BiotechBM411-01DNA Ladder
TransDetect PCR Mycoplasma Detection KitTransGen BiotechFM311-01Mycoplasma test 
TrypLE Select Enzyme (1x)Thermo Fisher (Gibco)12563011Gentle cell dissociation for adherent AFCs
Trypsin (0.025%)Sigma-AldrichT4799G-banding pretreatment of slides (30-60 s)
VeritiPro 96-well Thermal CyclerThermo Fisher ScientificA48141PCR for episomal clearance verification
Water Bath (37 °C)Shanghai Zhixin Experimental Instrument Technology Co., Ltd.ZX-S22Thawing media and reagents
Y-27632 Dihydrochloride (ROCK inhibitor)Tocris1254Enhances iPSC survival post-dissociation (10 uM)

References

  1. Gurdon JB. The developmental capacity of nuclei taken from intestinal epithelium cells of feeding tadpoles. Development. 1962;10(4):622-640.
  2. Evans MJ, Kaufman MH. Establishment in culture of pluripotential cells from mouse embryos. Nature. 1981;292(5819):154-156.
  3. Martin GR. Isolation of a pluripotent cell line from early mouse embryos cultured in medium conditioned by teratocarcinoma stem cells. Proc Natl Acad Sci U S A. 1981;78(12):7634-7638.
  4. Thomson JA, Itskovitz-Eldor J, Shapiro SS, Waknitz MA, Swiergiel J, et al. Embryonic stem cell lines derived from human blastocysts. Science. 1998;282(5391):1145-1147.
  5. Takahashi K, Tanabe K, Ohnuki M, N....

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Tags

Aneuploid Human IPSCsPluripotency MarkersMesenchymal To EpithelialG-Banding KaryotypePCR Vector ClearanceFeeder-Free ReprogrammingDisease ModelingChromosome Biology

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