RnDCircle Logo
박상배 연구실
서울대학교 바이오시스템공학과
박상배 교수
기본 정보
연구 분야
프로젝트
발행물
구성원

박상배 연구실

서울대학교 바이오시스템공학과 박상배 교수

박상배 연구실은 바이오시스템공학을 기반으로 나노바이오소재, 조직공학, 줄기세포·오가노이드, 유전자 전달, 배양육 및 대체식품용 3D 바이오프린팅 기술을 융합하여 재생의학과 지속가능 바이오제조를 아우르는 연구를 수행하며, 생체모사형 소재와 공정 설계를 통해 조직 재생, 정밀의료, 미래 식품 산업의 혁신적 응용을 추구하고 있다.

대표 연구 분야
연구 영역 전체보기
나노바이오소재 기반 조직재생 및 조직공학 thumbnail
나노바이오소재 기반 조직재생 및 조직공학
주요 논문
5
논문 전체보기
1
review
|
인용수 0
·
2025
Ultra-tiny-scale technology for engineering human ear therapeutics
Harshita Sharma, Woochan Kim, Sejong Oh, Dream Kim, Shinyull Lee, Sangbae Park, Jooseon Oh, Sunho Park, Jangho Kim
IF 8
Biofabrication
Ultra-tiny-scale technology representing engineered micro- and nano-scale materials has gained considerable attention for a wide range of applications, including hearing restoration. The advent of hearing loss and its recovery has been the topic of intense discussion since many decades. Although conventional treatments partially support hearing recovery, they present certain limitations such as subsequent immune response and donor site morbidity leading to even worsened sensory disturbances. Microscale- and nanoscale-based approaches such as tissue engineering, nanoparticle-assisted drug delivery systems, and micro/nanofabrication-aided auditory stimulations have been shown to play an efficient role in recovery from hearing disorders. In particular, the introduction of different biomaterials and biopolymers (natural and synthetic) with influential topographical cues and excellent biocompatibility has been found to conveniently bypass previous challenges posed by rigid human ear structures and provided a new path for improved and advanced hearing-recovery approaches. This review is focused on the development of micro/nanoengineering-based hearing recovery therapeutics and their significant impact on the future of hearing research. It discusses the physiological functions associated with the human ear and the mechanism underlying distinct hearing loss disorders as well as highlights various engineered ultra-tiny-scale-assisted strategies for developing advanced hearing therapeutics. Finally, we deliberate on commercialization aspect and future perspectives of implementing micro/nanotechnologies for hearing restoration platforms.
https://doi.org/10.1088/1758-5090/add210
Nanotechnology
Hearing aid
Nanoengineering
Hearing loss
Computer science
Commercialization
Materials science
Biomedical engineering
Medicine
Audiology
2
article
|
인용수 24
·
2024
Graphene Hybrid Tough Hydrogels with Nanostructures for Tissue Regeneration
Yonghyun Gwon, Sangbae Park, Woochan Kim, Sunho Park, Harshita Sharma, Hoon Eui Jeong, Hyunjoon Kong, Jangho Kim
IF 9.1
Nano Letters
Over the past few decades, hydrogels have attracted considerable attention as promising biomedical materials. However, conventional hydrogels require improved mechanical properties, such as brittleness, which significantly limits their widespread use. Recently, hydrogels with remarkably improved toughness have been developed; however, their low biocompatibility must be addressed. In this study, we developed a tough graphene hybrid hydrogel with nanostructures. The resultant hydrogel exhibited remarkable mechanical properties while representing an aligned nanostructure that resembled the extracellular matrix of soft tissue. Owing to the synergistic effect of the topographical properties, and the enhanced biochemical properties, the graphene hybrid hydrogel had excellent stretchability, resilience, toughness, and biocompatibility. Furthermore, the hydrogel displayed outstanding tissue regeneration capabilities (e.g., skin and tendons). Overall, the proposed graphene hybrid tough hydrogel may provide significant insights into the application of tough hydrogels in tissue regeneration.
https://doi.org/10.1021/acs.nanolett.3c04188
Self-healing hydrogels
Biocompatibility
Materials science
Nanotechnology
Toughness
Regeneration (biology)
Graphene
Nanostructure
Extracellular matrix
Tissue engineering
3
review
|
gold
·
인용수 45
·
2023
Engineering considerations of iPSC-based personalized medicine
Sangbae Park, Yonghyun Gwon, Shahidul Ahmed Khan, Kyoung‐Je Jang, Jangho Kim
IF 9.6
Biomaterials Research
Personalized medicine aims to provide tailored medical treatment that considers the clinical, genetic, and environmental characteristics of patients. iPSCs have attracted considerable attention in the field of personalized medicine; however, the inherent limitations of iPSCs prevent their widespread use in clinical applications. That is, it would be important to develop notable engineering strategies to overcome the current limitations of iPSCs. Such engineering approaches could lead to significant advances in iPSC-based personalized therapy by offering innovative solutions to existing challenges, from iPSC preparation to clinical applications. In this review, we summarize how engineering strategies have been used to advance iPSC-based personalized medicine by categorizing the development process into three distinctive steps: 1) the production of therapeutic iPSCs; 2) engineering of therapeutic iPSCs; and 3) clinical applications of engineered iPSCs. Specifically, we focus on engineering strategies and their implications for each step in the development of iPSC-based personalized medicine.
https://doi.org/10.1186/s40824-023-00382-x
Personalized medicine
Engineering ethics
Biomedical engineering
Computer science
Medicine
Engineering
Nanotechnology
Materials science
Bioinformatics
Biology
정부 과제
8
과제 전체보기
1
2025년 8월-2026년 8월
|93,579,000
저산소 환경 극복을 위한 산소 자가생성 클로렐라-근육세포 공생 배양육의 개발
본 연구의 최종 목표는 두꺼운 조직을 제작했을 때 조직 내부에 발생하는 저산소 환경을 극복하기 위해 클로렐라 기반의 산소 자가생성형 바이오잉크를 바탕으로 클로렐라-근육세포 공생 배양육 (Symbiotic bulk cultured meat)을 개발하는 것임. 구체적으로, (1) 산소 자가생성 기능이 부여된 클로렐라 기반 바이오잉크를 개발하고, (2) 클로렐라...
세포배양식품
산소 자가공급
3D 바이오프린팅
공생 배양육
바이오잉크
2
2025년 3월-2026년 12월
|302,000,000
농산가공 부산물 업사이클링 소재를 이용한 조직화 식물성 대체육 산업화 기술 개발 및 상업적 규모의 생산
주관연구개발기관(지구인컴퍼니)은 단백질 대체 식품 시장에 새로운 신소재 공급을 위해 다양한 농산가공 부산물을 업사이클링한 식품 소재를 산업형 설비를 통해 조직화 식물성 대체육 시제품을 제작하고, 물성학적 특성을 개선함. 또한, 농산가공 부산물을 업사이클링한 다양한 식품 소재를 pilot-scale 공정으로 대량생산하고, 3D 프린팅 시스템을 이용한 식물성 ...
업사이클링
식품 3D 프린팅
농산가공 부산물
식물성 대체육
지능형 단백질/지방 잉크
3
2025년 3월-2026년 12월
|225,000,000
농산가공 부산물 업사이클링 소재를 이용한 조직화 식물성 대체육 산업화 기술 개발 및 상업적 규모의 생산
주관연구개발기관(지구인컴퍼니)은 단백질 대체 식품 시장에 새로운 신소재 공급을 위해 다양한 농산가공 부산물을 업사이클링한 식품 소재를 산업형 설비를 통해 조직화 식물성 대체육 시제품을 제작하고, 물성학적 특성을 개선함. 또한, 농산가공 부산물을 업사이클링한 다양한 식품 소재를 pilot-scale 공정으로 대량생산하고, 3D 프린팅 시스템을 이용한 식물성 ...
업사이클링
식품 3D 프린팅
농산가공 부산물
식물성 대체육
지능형 단백질/지방 잉크