工程材料可以修复断裂的神经。
Engineered material can reconnect severed nerves

原始链接: https://news.rice.edu/news/2023/rice-engineered-material-can-reconnect-severed-nerves

德克萨斯州立大学的研究人员开发了一种磁电材料,可以连接断裂的神经,为解决神经对通过传统神经刺激方法产生的电信号的低响应性问题提供了解决方案。这种被称为“自修正磁电元材料”的新材料能够产生对神经刺激反应良好的电信号,这归功于其非线性响应。这一突破是通过Robinson实验室(由Jacob Robinson教授领导)与前研究科学家Gauri Bhave之间的合作实现的,可能会改变医疗技术,如假肢和神经健康。该材料以精确的方式连接了断裂的大鼠坐骨神经,性能比传统的基于磁性的方法好120倍。其在医学,特别是神经刺激治疗方面的广泛应用潜力,以及计算、传感、电子和其他领域的先进材料设计。最近发表在《自然材料》上的文章,得到了美国国家科学基金会和国家卫生研究所的支持。以下提供了相关新闻和故事的联系信息。

总的来说,植入式医疗设备面临着与可靠性、安全性、可扩展性和监管批准相关的众多挑战。尽管技术发展使近年来取得了显著进展,但仍存在一些关键障碍。例如,确保与外部世界的正确通信,保持稳定的电源来源,避免异物反应或感染,提供足够的抗病毒和抗菌免疫力,支持无线更新,管理电池充电和管理,防止电磁干扰或辐射,以及实现安全的数据传输和存储提出了基本挑战,需要进一步研究和创新。此外,解决隐私问题,确保适当的用户同意,促进公平和可及性,平衡知识产权权和标准合规性,减轻商业化压力,减少环境污染和资源消耗,实现低收入人群的可负担性和可负担性,这些增加了需要解决的额外复杂性问题。最后,解决慢性使用和依赖的社会和心理影响,包括对专门诊所或医院的成瘾和依赖性,引发了关于人类增强和身份的哲学辩论,特别是因为这些变化越来越影响到认知能力、记忆力、创造力、行为和意识。这些考虑意味着需要在学术机构、产业合作伙伴、政府监管者、患者倡导组织和公众之间进行持续、协作的努力,以确保医疗植入技术的发展、公平分配、安全部署、适当利用和最佳结果。
相关文章

原文

Researchers have long recognized the therapeutic potential of using magnetoelectrics ⎯ materials that can turn magnetic fields into electric fields ⎯ to stimulate neural tissue in a minimally invasive way and help treat neurological disorders or nerve damage. The problem, however, is that neurons have a hard time responding to the shape and frequency of the electric signal resulting from this conversion.

researcher
Rice University doctoral alum Joshua Chen is lead author on a study published in Nature Materials. (Photo by Gustavo Raskosky/Rice University)

Rice University neuroengineer Jacob Robinson and his team designed the first magnetoelectric material that not only solves this issue but performs the magnetic-to-electric conversion 120 times faster than similar materials. According to a study published in Nature Materials, the researchers showed the material can be used to precisely stimulate neurons remotely and to bridge the gap in a broken sciatic nerve in a rat model.

The material’s qualities and performance could have a profound impact on neurostimulation treatments, making for significantly less invasive procedures, Robinson said. Instead of implanting a neurostimulation device, tiny amounts of the material could simply be injected at the desired site. Moreover, given magnetoelectrics’ range of application in computing, sensing, electronics and other fields, the research provides a framework for advanced materials design that could drive innovation more broadly.

researcher
Gauri Bhave, a former research scientist in the Robinson lab, is a lead co-author on a study published in Nature Materials. (Photo courtesy of Gauri Bhave)

“We asked, ‘Can we create a material that can be like dust or is so small that by placing just a sprinkle of it inside the body you’d be able to stimulate the brain or nervous system?’” said Joshua Chen, a Rice doctoral alumnus who is a lead author on the study. “With that question in mind, we thought that magnetoelectric materials were ideal candidates for use in neurostimulation. They respond to magnetic fields, which easily penetrate into the body, and convert them into electric fields ⎯ a language our nervous system already uses to relay information.”

The researchers started with a magnetoelectric material made up of a piezoelectric layer of lead zirconium titanate sandwiched between two magnetorestrictive layers of metallic glass alloys, or Metglas, which can be rapidly magnetized and demagnetized.

Gauri Bhave, a former researcher in the Robinson lab who now works in technology transfer for Baylor College of Medicine, explained that the magnetorestrictive element vibrates with the application of a magnetic field.

research illustration
Schematic of neural response for linear magnetic-to-electric conversion (top two conversions) versus nonlinear (bottom third). (Image courtesy of Josh Chen/Rice University)

“This vibration means it basically changes its shape,” Bhave said. “The piezoelectric material is something that, when it changes its shape, creates electricity. So when those two are combined, the conversion that you’re getting is that the magnetic field you’re applying from the outside of the body turns into an electric field.”

However, the electric signals magnetoelectrics generate are too fast and uniform for neurons to detect. The challenge was to engineer a new material that could generate an electric signal that would actually get cells to respond.

“For all other magnetoelectric materials, the relationship between the electric field and the magnetic field is linear, and what we needed was a material where that relationship was nonlinear,” Robinson said. “We had to think about the kinds of materials we could deposit on this film that would create that nonlinear response.”

The researchers layered platinum, hafnium oxide and zinc oxide and added the stacked materials on top of the original magnetoelectric film. One of the challenges they faced was finding fabrication techniques compatible with the materials.

research illustration
Magnetoelectric nonlinear metamaterials are 120 times faster at stimulating neural activity compared to previously used magnetic materials. (Image courtesy of the Robinson lab/Rice University)

“A lot of work went into making this very thin layer of less than 200 nanometers that gives us the really special properties,” Robinson said.

“This reduced the size of the entire device so that in the future it could be injectable,” Bhave added.

As proof of concept, the researchers used the material to stimulate peripheral nerves in rats and demonstrated the material’s potential for use in neuroprosthetics by showing it could restore function in a severed nerve.

“We can use this metamaterial to bridge the gap in a broken nerve and restore fast electric signal speeds,” Chen said. “Overall, we were able to rationally design a new metamaterial that overcomes many challenges in neurotechnology. And more importantly, this framework for advanced material design can be applied toward other applications like sensing and memory in electronics.”

researcher
Jacob Robinson is a professor of electrical and computer engineering and bioengineering at Rice University. (Photo courtesy of the Robinson lab/Rice University)

Robinson, who drew on his doctoral work in photonics for inspiration in engineering the new material, said he finds it “really exciting that we can now design devices or systems using materials that have never existed before rather than being confined to ones in nature.”

“Once you discover a new material or class of materials, I think it’s really hard to anticipate all the potential uses for them,” said Robinson, a professor of electrical and computer engineering and bioengineering. “We’ve focused on bioelectronics, but I expect there may be many applications beyond this field.”

Antonios Mikos, Rice’s Louis Calder Professor of Chemical Engineering, professor of bioengineering and materials science and nanoengineering and director of the Biomaterials Lab, Center for Excellence in Tissue Engineering and J.W. Cox Laboratory for Biomedical Engineering, is also an author on the study.

The research was supported by the National Science Foundation (2023849) and the National Institutes of Health (U18EB029353).

Peer-reviewed paper:

“Self-rectifying magnetoelectric metamaterials for remote neural stimulation and motor function restoration” | Nature Materials | DOI: 10.1038/s41563-023-01680-4
Authors: Joshua Chen, Gauri Bhave, Fatima Alrashdan, Abdeali Dhuliyawalla, Katie Hogan, Antonios Mikos and Jacob Robinson

https://www.nature.com/articles/s41563-023-01680-4

Image downloads:

https://news-network.rice.edu/news/files/2023/10/230427_BRC-Shoot-Josh-Chen_Gustavo-07776.jpg
CAPTION: Rice University doctoral alum Joshua Chen is lead author on a study published in Nature Materials. (Photo by Gustavo Raskosky/Rice University)

https://news-network.rice.edu/news/files/2023/10/Gauri-Bhave.jpg
CAPTION: Gauri Bhave, a former research scientist in the Robinson lab, is a lead co-author on a study published in Nature Materials. (Photo courtesy of Gauri Bhave)

https://news-network.rice.edu/news/files/2023/10/magnetic-to-electric.jpg
CAPTION: Schematic of neural response for linear magnetic-to-electric conversion (top two conversions) versus nonlinear (bottom third). (Image courtesy of Josh Chen/Rice University)

https://news-network.rice.edu/news/files/2023/10/MNM_pic.jpg
CAPTION: Magnetoelectric nonlinear metamaterials are 120 times faster at stimulating neural activity compared to previously used magnetic materials. (Image courtesy of the Robinson lab/Rice University)
https://news-network.rice.edu/news/files/2023/10/JRobinson_prov.jpg
CAPTION: Jacob Robinson is a professor of electrical and computer engineering and bioengineering at Rice University. (Photo courtesy of the Robinson lab/Rice University)

Related stories:

Rice’s Cherukuri, Robinson to speak at SXSW:
https://news.rice.edu/news/2023/rices-cherukuri-robinson-speak-sxsw
Rice U. bioengineering Ph.D. named Schmidt Science Fellow:
https://news.rice.edu/news/2023/rice-u-bioengineering-phd-named-schmidt-science-fellow
Mikos Receives International Award of the European Society for Biomaterials:
https://bioengineering.rice.edu/news/mikos-receives-international-award-european-society-biomaterials
Wireless activation of targeted brain circuits in less than one second:
https://news.rice.edu/news/2022/wireless-activation-targeted-brain-circuits-less-one-second

Links:

Robinson lab: www.robinsonlab.com

Mikos lab: https://mikoslab.rice.edu/
Biomaterials Lab: https://research.rice.edu/bml/
Center for Excellence in Tissue Engineering: http://tissue.rice.edu/

Rice Neuroengineering Initiative: neuroengineering.rice.edu

Rice Department of Electrical and Computer Engineering: eceweb.rice.edu
Rice Department of Bioengineering: https://bioengineering.rice.edu/

George R. Brown School of Engineering: engineering.rice.edu

About Rice:

Located on a 300-acre forested campus in Houston, Rice University is consistently ranked among the nation’s top 20 universities by U.S. News & World Report. Rice has highly respected schools of Architecture, Business, Continuing Studies, Engineering, Humanities, Music, Natural Sciences and Social Sciences and is home to the Baker Institute for Public Policy. With 4,552 undergraduates and 3,998 graduate students, Rice’s undergraduate student-to-faculty ratio is just under 6-to-1. Its residential college system builds close-knit communities and lifelong friendships, just one reason why Rice is ranked No. 1 for lots of race/class interaction and No. 4 for quality of life by the Princeton Review. Rice is also rated as a best value among private universities by Kiplinger’s Personal Finance.

联系我们 contact @ memedata.com