Evidence map›Paper›PMID 39711093›Full record

ArticleBiotechnology journal2024

Adaptable Manufacturing and Biofabrication of Milliscale Organ Chips With Perfusable Vascular Beds.

Charles Ethan Byrne, Ashley T Martier, Gideon Wills Kpeli, Kevin Michael Conrad, William Bralower, Elisabet Olsen, Gabrielle Fortes, Caroline C Culp, Max Wendell, Keefer A Boone and 2 more

Abstract read
In one paragraph

Article in Biotechnology journal, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 5 papers.

0numbers the graph read from it
0cells of the map it votes in
5citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

Each row is one number read from the abstract, on the scale the paper reported it, with its interval. Left of the dashed line favours the treatment, right favours the comparator. Under each row is the sentence it came from. New to these charts? A ten-minute tutorial.

The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

The trial behind it

Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.

Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

5 citing papers in PubMed.

  1. Review
  2. Article
  3. Article
  4. Article
  5. Article
4 · The record

Corrections and comments

PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.

5 · Who and what money

Authors and funding

12 authors.

Charles Ethan ByrneDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Ashley T MartierDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Gideon Wills KpeliDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Kevin Michael ConradDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
William BralowerDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Elisabet OlsenBioinnovation Program, Tulane University, New Orleans, USA.
Gabrielle FortesDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Caroline C CulpDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Max WendellDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Keefer A BooneDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.
Matthew R BurowSection of Hematology and Oncology, Deming Department of Medicine, Tulane University School of Medicine, New Orleans, USA.
Mark J MondrinosDepartment of Biomedical Engineering, Tulane University, New Orleans, USA.ORCID https://orcid.org/0000-0002-2704-9440

Funding

Eye, Ear, Nose, and Throat (EENT) Foundation EE221102
6 · The paper itself

Abstract

Microphysiological systems (MPS) containing perfusable vascular beds unlock the ability to model tissue-scale elements of vascular physiology and disease in vitro. Access to inexpensive stereolithography (SLA) 3D printers now enables benchtop fabrication of polydimethylsiloxane (PDMS) organ chips, eliminating the need for cleanroom access and microfabrication expertise, and can facilitate broader adoption of MPS approaches in preclinical research. Rapid prototyping of organ chip mold designs accelerates the processes of design, testing, and iteration, but geometric distortion and surface roughness of SLA resin prints can impede the development of standardizable manufacturing workflows. This study reports postprocessing procedures for manufacturing SLA-printed molds that produce fully cured, flat, patently bonded, and optically clear polydimethyl siloxane (PDMS) organ chips. Injection loading tests were conducted to identify milliscale membrane-free organ chip (MFOC) designs that allowed reproducible device loading by target end-users, a key requirement for broad nonexpert adoption in preclinical research. The optimized milliscale MFOC design was used to develop tissue engineering protocols for (i) driving bulk tissue vasculogenesis in MFOC, and (ii) seeding the bulk tissue interfaces with a confluent endothelium to stimulate self-assembly of perfusable anastomoses with the internal vasculature. Comparison of rocker- and pump-based protocols for flow-conditioning of anastomosed vascular beds revealed that continuous pump-driven flow is required for reproducible barrier maturation throughout the 3D tissue bulk. Demonstrated applications include nanoparticle perfusion and engineering perfusable tumor vasculature. These easily adaptable methods for designing and fabricating vascularized microphysiological systems can accelerate their adoption in a diverse range of preclinical laboratory settings.

Indexed as

DimethylpolysiloxanesPrinting, Three-DimensionalTissue EngineeringHumansHuman Umbilical Vein Endothelial CellsLab-On-A-Chip DevicesMicrophysiological SystemsStereolithographybaysilonDimethylpolysiloxanes3D printingendothelial barrierorgan chipstissue engineeringtumor vasculaturevascularization

Identifiers

PMID39711093
PMCPMC11664230

What OpenQuestion holds

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LicenceCC BY-NC-ND
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Registered trials

None linked

Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the OpenQuestion graph.