SONIDEL Limited      :: sales@sonidel.com        :: tech-support@sonidel.com         :: Tel:  IRE, ++353 (0)1 4434358 UK, ++44 (0)20 3239 4904 USA, ++1 (617) 297 2435 .
Most Popular

- NEPA21 Electroporator
- ELEPO21 Electroporator
- NEPA Porator
- ECFG Porator
- Transgenic Mouse Zygote Electroporation: NEPA21
- Organoid Electroporation: NEPA21
- Neuroscience & Genome Editing Publications
- Hybridoma Production for Monoclonal Antibodies
- Bacteria / Yeast Electroporation
- SP100: Sonoporator
- NEPA21: Illustrated  Applications
- NEPA21: Publications by   Research Application
- Connection Cables
- CU700: Monitoring System
- CU902: Polarity Exchanger
- CUY21 EDIT Electroporator
- CUY21 EDIT-S Electroporator
- CUY21 SC Electroporator
- In Vivo, In vitro Electrodes
- Electroporation Cuvettes
- Cuvette Chamber & Stand   Holder
- Laser Thermal Microinjector
- Mechanical Vibration Units
- Ultrasounic BioMicroscope
- KTAC-4000: Sonoporator
- LF101: Cell Fusion Device
- LF201: Cell Fusion Device
- Electro Cell Fusion Electrodes
- Electroporation and Electro   Cell Fusion Accessories
- Electroporators
- Publications/Protocols
- Electrodes by Product Codes

 

Product Search
Search by product code, name or application:


Full Product List
$catmenu
Electrode Search
Search for the most appropriate electrode by research application:

Publications/Protocols
- Sonoporation
- Electroporation
- ElectroCell Fusion
- What Is Sonoporation?

Electrode Recommendation
- Electrode Recommendations

Featured Applications
Sonoporation
SONIDEL SP100 and KTAC4000
Electroporation
CUY21 EDIT, CUY21 SC
Electro Cell Fusion
LF101 and LF201


Featured Device

1
Product Code: SONIDEL STK10

Desc:Ultrasound Transfection Positive Control
Applic:Sonoporation Transfection Kit


Featured Electrode



Product Code: CUY650P2

Application:
Electrodes for Electroporation
Description:
For Mouse Embryo Tweezers w/2mmφ platinum disk electrodes

Information
- How to order
- Contact us

NEPA21: Organoid Applicaitons and Publications

A SONIDEL overview of NEPA21 use in organoid electroporation, including representative protocols, organoid result snapshots, and publication coverage across diverse human and murine organoid systems.

The NEPA21 is presented here from the perspective of optimising delivered energy for delicate organoid targets. The underlying workflow logic is to use only the energy needed to porate the membrane, helping researchers preserve viability while maintaining practical gene-delivery performance.

The NAPA21 platform supports both dissociated organoids via the CU540 cuvette electrode and whole organoids via the CUY650P1 electrode, alongside a broader electrode ecosystem intended to expand experimental flexibility.

Delivered-energy optimisation
Dissociated and whole organoids
250+ electrode configurations

Why organoid groups evaluate the NEPA21

For sensitive organoid workflows, the central practical question is not only whether cargo enters the target, but whether membrane opening, cargo transfer, and recovery can be tuned tightly enough to preserve biological usefulness downstream. This page positions the NEPA21 around that requirement: fine control over delivered energy, lower-current workflows relative to simpler electroporation approaches, and flexibility across dissociated and intact organoid formats.

The link to the full NEPA21 Organoid Publication List points to adoption in organoid laboratories, including the Organoid Group at the Hubrecht Institute, and to a broad publication base spanning intestinal, colon, brain, airway, breast, pancreatic, liver, ovarian, conjunctival, lacrimal, thymic, and other organoid systems.

Methodologically, the most relevant differentiators here are separate poring/transfer-style control logic, multiple electrode options, and workflow support for both cluster/single-cell style preparation and intact-organoid handling.

Representative protocol highlights

We highlights two representative protocol routes and several practical optimisation notes for gastrointestinal and intestinal organoid workflows.

======

Representative protocol

Human intestinal and GI organoid engineering

We highlight both Efficient genetic engineering of human intestinal organoids using electroporation and the JoVE protocol Universal and Efficient Electroporation Protocol for Genetic Engineering of Gastrointestinal Organoids.

Open JoVE protocol

Protocol notes

Workflow details called out in publications

Clusters of roughly 10–15 cells were used instead of full single-cell dissociation, plasmids of 4.2 kb and 9.3 kb were compared, Cas9 plasmid was also tested, the workflow was described as taking 1 day instead of 4 days, and a 40-minute regeneration step after electroporation was highlighted as beneficial for survivability and especially large-plasmid transfection efficiency.

=======

Client Reported transfection examples

PDAC GFP plasmid: 4.2 kb TE 92.1% / 9.3 kb TE 46.7%
CRC GFP plasmid: 4.2 kb TE 84.3% / 9.3 kb TE 53.4%
CCC GFP plasmid: 4.2 kb TE 83.0% / 9.3 kb TE 39.5%
GC GFP plasmid: 4.2 kb TE 74.1% / 9.3 kb TE 32.3%

Client laboratory verified results snapshot

Additional know-how data are available from SONIDEL on request.

Cell / organoid type Viability Transfection efficiency
Human Normal Fundic Gastric Organoids 68% —
Mouse Fundic Gastric Organoids 65% —
Mouse Colorectal Cancer Organoids 100% 50%

Colon organoid example from Keio University

The PDF includes a TP53 knockout colon organoid example in which TP53 KO organoids were selected with Nutlin-3. The accompanying note states that TP53 KO organoids tolerated Nutlin-3, whereas WT colon organoids did not grow under Nutlin-3-supplemented conditions.

Publication coverage across organoid systems

The NEPA21 publication footprint spans a wide set of human and murine organoid contexts.  Note the link to a full publication listing: [NEPA21 Organoid Publications]

Human small intestinal
Human intestinal
Human colon
Human colon cancer
Human colorectal cancer
Human fetal brain
Human iPSC neuronal brain
Human airway
Human conjunctiva
Human pancreatic
Pancreatic cancer organoids
Human liver
Human hepatocyte
Human breast
Human gastric
Human gut
Human large intestinal
Human esophageal adenocarcinoma
Human serous ovarian cancer
Fallopian tube epithelium
Endometrial
Murine intestinal
Murine small intestinal
Murine pancreatic
Murine colon
Murine lacrimal gland
Murine thymic epithelial cells
Murine xenografts
Organoid-derived NPCs
Cancer tissue spheroids

Selected publication highlights

Some representative publications.

Intestinal / colon

Foundational intestinal organoid engineering

Efficient genetic engineering of human intestinal organoids using electroporation
Nat Protoc. 2015

Modeling colorectal cancer using CRISPR-Cas9-mediated engineering of human intestinal organoids
Nat Med. 2015

Differentiation and CRISPR-Cas9-mediated genetic engineering of human intestinal organoids
STAR Protoc. 2022

GI protocol / translational

GI organoid protocol and CRC examples

Universal and Efficient Electroporation Protocol for Genetic Engineering of Gastrointestinal Organoids
J Vis Exp. 2020

A protocol for efficient CRISPR-Cas9-mediated knock-in in colorectal cancer patient-derived organoids
STAR Protoc. 2021

Recapitulating the adenoma–carcinoma sequence in mismatch-repair-deficient human colon organoids
2024

Brain / neuronal

Brain and neuronal organoid examples

Human fetal brain self-organizes into long-term expanding organoids
Cell. 2024

Calcium-Enhanced Medium-Based Delivery of Splice Modulating Antisense Oligonucleotides in hiPSC-derived neuronal models
Biomedicines. 2024

Contribution of rare coding variants to microcephaly in human forebrain organoid-linked systems
Genome Med. 2025

Airway / conjunctiva

Airway and ocular surface models

Modelling of primary ciliary dyskinesia using patient-derived airway organoids
EMBO Rep. 2021

Drug Repurposing for Cystic Fibrosis in Nasal Organoids
Int J Mol Sci. 2022

Human conjunctiva organoids to study ocular surface homeostasis and disease
Cell Stem Cell. 2024

Pancreatic / hepatic

Pancreatic and liver-linked examples

USP25 promotes pathological HIF-1-driven metabolic reprogramming in pancreatic cancer
Nat Commun. 2022

Engineered human hepatocyte organoids enable CRISPR-based target discovery and drug screening for steatosis
Nat Biotechnol. 2023

Establishment of human fetal hepatocyte organoids and CRISPR-Cas9 knockin/knockout
Nat Protoc. 2020

Breast / ovarian

Breast and ovarian organoid examples

Long-term culture, genetic manipulation and xenotransplantation of human normal and breast cancer organoids
Nat Protoc. 2021

A Living Biobank of Breast Cancer Organoids Captures Disease Heterogeneity
Cell. 2018

Organoid platinum-resistance model identifies KRT17 as a biomarker in ovarian cancer
iScience. 2025

Murine organoid workflows

Murine intestinal and glandular protocols

A Protocol for Multiple Gene Knockout in Mouse Small Intestinal Organoids Using a CRISPR-concatemer
J Vis Exp. 2017

Establishment, Maintenance, Differentiation, Genetic Manipulation, and Transplantation of Mouse and Human Lacrimal Gland Organoids
J Vis Exp. 2023

Derivation of functional thymic epithelial organoid lines from adult murine thymus
Cell Rep. 2024

Additional examples

Further systems shown in the PDF

Fallopian tube epithelium, endometrial organoids, head and neck cancer organoids, human gastric assembloids, biopsy-derived duodenal organoids, murine normal colorectal models, and organoid-derived neural progenitor cell workflows are all represented in the attached bibliography.

Practical takeaway

What this publication base signals

Taken together, the full publication list positions the NEPA21 as a practical option for early-stage engineering, perturbation, reporter delivery, and disease-modelling workflows across diverse organoid systems where viability, timing, and assay-readiness matter.

Summary

This page condenses why NEPA21 is used in organoid electroporation, what protocol features are emphasised, what result snapshots are shown, and how broad the publication base has become across human and murine organoid systems.

Discuss your organoid workflow with SONIDEL

Share the organoid type, cargo format, and whether you are working with dissociated organoids, intact organoids, or a gastrointestinal / translational model, and Sonidel can advise on an appropriate starting route.

Request: Help or Free NEPA21 Trial


© Copyright 2026 Sonidel Limited. All Rights Reserved. XML Sitemap : User Sitemap