Targeted Cancer Therapy‐on‐A‐Chip DOI Creative Commons

Heba Abed,

R. Radha,

Shabana Anjum

et al.

Advanced Healthcare Materials, Journal Year: 2024, Volume and Issue: 13(29)

Published: Aug. 5, 2024

Abstract Targeted cancer therapy (TCT) is gaining increased interest because it reduces the risks of adverse side effects by specifically treating tumor cells. TCT testing has traditionally been performed using two‐dimensional (2D) cell culture and animal studies. Organ‐on‐a‐chip (OoC) platforms have developed to recapitulate in vitro, as cancer‐on‐a‐chip (CoC), used for chemotherapeutics development testing. This review explores use CoCs both develop test TCTs, with a focus on three main aspects, identify target biomarkers development, free, un‐encapsulated encapsulated TCTs. Despite current challenges such system scaling, externally triggered TCToC shows promising future serve supportive, pre‐clinical platform expedite bench‐to‐bedside translation.

Language: Английский

Advancing Organoid Engineering for Tissue Regeneration and Biofunctional Reconstruction DOI Creative Commons
Hairong Jin, Zengqi Xue, Jinnv Liu

et al.

Biomaterials Research, Journal Year: 2024, Volume and Issue: 28

Published: Jan. 1, 2024

Tissue damage and functional abnormalities in organs have become a considerable clinical challenge. Organoids are often applied as disease models drug discovery screening. Indeed, several studies shown that organoids an important strategy for achieving tissue repair biofunction reconstruction. In contrast to established stem cell therapies, high relevance. However, conventional approaches limited the application of regenerative medicine. Engineered might capacity overcome these challenges. Bioengineering—a multidisciplinary field applies engineering principles biomedicine—has bridged gap between medicine promote human health. More specifically, bioengineering been accelerate their translation. this review, beginning with basic concepts organoids, we describe strategies cultivating engineered discuss multiple modes create conditions breakthroughs organoid research. Subsequently, on reconstruction presented. Finally, highlight limitations challenges hindering utilization applications. Future research will focus using advanced tools personalized

Language: Английский

Citations

12

Actuation for flexible and stretchable microdevices DOI Open Access

Uditha Roshan,

Amith Mudugamuwa, Haotian Cha

et al.

Lab on a Chip, Journal Year: 2024, Volume and Issue: 24(8), P. 2146 - 2175

Published: Jan. 1, 2024

This review paper provides a comprehensive overview of the state-of-the-art actuation mechanisms for flexible and stretchable microdevices.

Language: Английский

Citations

12

Biomaterials for inflammatory bowel disease: treatment, diagnosis and organoids DOI
Jia Wang, Yuying Shi,

Bei Mao

et al.

Applied Materials Today, Journal Year: 2024, Volume and Issue: 36, P. 102078 - 102078

Published: Jan. 20, 2024

Language: Английский

Citations

9

Microfluidic technologies for enhancing the potency, predictability and affordability of adoptive cell therapies DOI
Zongjie Wang, Shana O. Kelley

Nature Biomedical Engineering, Journal Year: 2025, Volume and Issue: unknown

Published: Feb. 14, 2025

Language: Английский

Citations

1

Application of organoid technology in the human health risk assessment of microplastics: A review of progresses and challenges DOI Creative Commons

Jiaoyue Cong,

Jin Wu, Yanjun Fang

et al.

Environment International, Journal Year: 2024, Volume and Issue: 188, P. 108744 - 108744

Published: May 11, 2024

Microplastic (MP) pollution has become a global environmental issue, and increasing concern been raised about its impact on human health. Current studies the toxic effects mechanisms of MPs have mostly conducted in animal models or vitro cell cultures, which limitations regarding inter-species differences stimulation cellular functions. Organoid technology derived from pluripotent adult stem cells broader prospects for predicting potential health risks to humans. Herein, we reviewed current application advancements opportunities different organoids, including brain, retinal, intestinal, liver, lung assess MPs. techniques accurately simulate complex processes reflect phenotypes related diseases caused by such as liver fibrosis, neurodegeneration, impaired intestinal barrier cardiac hypertrophy. Future perspectives were also proposed technological innovation risk assessment using extending lifespan organoids chronic toxicity MPs, reconstructing multi-organ interactions explore their studying microbiome-gut-brain axis effect

Language: Английский

Citations

8

Gut microbiota in health and disease: advances and future prospects DOI Creative Commons
Y J Zhang, Hong Wang, Yingpeng Sang

et al.

MedComm, Journal Year: 2024, Volume and Issue: 5(12)

Published: Nov. 20, 2024

Abstract The gut microbiota plays a critical role in maintaining human health, influencing wide range of physiological processes, including immune regulation, metabolism, and neurological function. Recent studies have shown that imbalances composition can contribute to the onset progression various diseases, such as metabolic disorders (e.g., obesity diabetes) neurodegenerative conditions Alzheimer's Parkinson's). These are often accompanied by chronic inflammation dysregulated responses, which closely linked specific forms cell death, pyroptosis ferroptosis. Pathogenic bacteria trigger these death pathways through toxin release, while probiotics been found mitigate effects modulating responses. Despite insights, precise mechanisms influences diseases remain insufficiently understood. This review consolidates recent findings on impact immune‐mediated inflammation‐associated conditions. It also identifies gaps current research explores potential advanced technologies, organ‐on‐chip models microbiome–gut–organ axis, for deepening our understanding. Emerging tools, single‐bacterium omics spatial metabolomics, discussed their promise elucidating microbiota's disease development.

Language: Английский

Citations

8

Advances in Human Organs-on-Chips and Applications for Drug Screening and Personalized Medicine DOI Creative Commons
Chenyang Zhou, Zhangjie Li, Kangyi Lu

et al.

Fundamental Research, Journal Year: 2024, Volume and Issue: unknown

Published: Feb. 1, 2024

The limitations of conventional animal tests and two-dimensional cell culture hinder their advancement in fundamental research clinical/translational applications. As an emerging alternative technology, organ-on-a-chip serves as a platform that faithfully simulates the key phenotypical, physiological, functional features human tissues/organs through accurate regulation parameters such physical biochemical microenvironment, well cellular patterns. In this review, we mainly introduce recent progress field, including lung, gut, heart, liver, vasculature multiorgan studies. Furthermore, highlight potential applications drug screening personalized medicine. Finally, conclude by addressing current challenges future perspective technology commercialization organ-on-chips. We anticipate development will revolutionize studies on biology medicine providing new understanding mechanisms diseases insights into clinical therapeutics.

Language: Английский

Citations

6

Organoid: Bridging the gap between basic research and clinical practice DOI
Guihu Weng, Jinxin Tao, Yueze Liu

et al.

Cancer Letters, Journal Year: 2023, Volume and Issue: 572, P. 216353 - 216353

Published: Aug. 18, 2023

Language: Английский

Citations

16

Intestinal organoid modeling: bridging the gap from experimental model to clinical translation DOI Creative Commons
Taotao Liu, Xiaoqi Li, Hao Li

et al.

Frontiers in Oncology, Journal Year: 2024, Volume and Issue: 14

Published: March 1, 2024

The 3D culture of intestinal organoids entails embedding isolated crypts and bone marrow mesenchymal stem cells within a growth factor-enriched matrix gel. This process leads to the formation hollow microspheres with structures resembling epithelial cells, which are referred as organoids. These encompass various functional cell types found in small intestine closely mimic organizational patterns intestine, earning them name “mini-intestines”. Intestinal tumors prevalent digestive system represent significant menace human health. Through application technology, miniature colorectal organs can be cultivated retain genetic characteristics primary tumor. innovation offers novel prospects for individualized treatments among patients tumors. Presently established libraries patient-derived serve potent tools conducting comprehensive investigations into tissue functionality, developmental processes, tumorigenesis, pathobiology cancer. review explores origins organoids, their culturing environments, advancements realm precision medicine. It also addresses current challenges outlines future development.

Language: Английский

Citations

5

Establishment and evaluation of on-chip intestinal barrier biosystems based on microfluidic techniques DOI Creative Commons
Hui Wang, Xiangyang Li, Pengcheng Shi

et al.

Materials Today Bio, Journal Year: 2024, Volume and Issue: 26, P. 101079 - 101079

Published: May 5, 2024

As a booming engineering technology, the microfluidic chip has been widely applied for replicating complexity of human intestinal micro-physiological ecosystems in vitro. Biosensors, 3D imaging, and multi-omics have to engineer more sophisticated barrier-on-chip platforms, allowing improved monitoring physiological processes enhancing performance. In this review, we report cutting-edge advances techniques establishment evaluation barrier platforms. We discuss different design principles microfabrication strategies gut models Further, comprehensively cover complex cell types (e.g., epithelium, organoids, endothelium, microbes, immune cells) controllable extracellular microenvironment parameters oxygen gradient, peristalsis, bioflow, gut-organ axis) used recapitulate main structural functional barriers. also present current multidisciplinary technologies indicators evaluating morphological structure integrity established Finally, highlight challenges future perspectives accelerating broader applications these platforms disease simulation, drug development, personalized medicine. Hence, review provides comprehensive guide development microfluidic-based

Language: Английский

Citations

5