RnDCircle Logo
반도체소자 연구실
박준영 교수
기본 정보
연구 분야
프로젝트
논문
구성원

반도체소자 연구실

박준영 교수

충북대학교의 반도체소자 연구실입니다.

대표 연구 분야
연구 영역 전체보기
I. CMOS Process Development thumbnail
I. CMOS Process Development
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.

5개년 연도별 논문 게재 수

57총합

5개년 연도별 피인용 수

363총합
주요 논문
3
논문 전체보기
1
article
|
인용수 0
·
2026
Nanozyme Catalysis Restores Hair Follicle Integrity by Reversing Peroxisomal Collapse
Songling Jiang, Jemin Andrew Choi, Seungho Jeon, Jun-Young Park, Hyunsun A. Kim, Dong-Ik Kim, Csaba Matta, Ji Hyun Ryu, Eun-Jung Jin
ACS Nano
Emerging evidence implicates organelle dysfunction, particularly within peroxisomes, as a critical driver of hair follicle degeneration and alopecia. While mitochondrial defects are well characterized in the context of hair loss, the contribution of peroxisomal failure to follicular homeostasis remains largely unexplored. Here, we identify peroxisomal dysfunction as a central molecular and metabolic defect underlying hair follicle aging and loss. Comprehensive transcriptomic analysis of human dermal papilla cells from alopecia patients revealed marked downregulation of peroxisome-associated pathways, including fatty acid β-oxidation, lipid degradation, and detoxification of reactive oxygen species. These alterations were recapitulated in <i>Nudt7</i>-deficient mice, in which targeted disruption of peroxisomal lipid metabolism leads to pronounced hair thinning, follicle miniaturization, and exacerbated oxidative stress. To therapeutically address peroxisomal impairment, we developed catalytic nanozymes (HA-Hem) that mimic peroxisomal catalase activity. Nanozyme treatment restored metabolic balance, reduced oxidative damage, and stimulated hair follicle regeneration in both wild-type and immunodeficient murine models. Mechanistically, nanozymes increased PPARα expression, thereby enhancing peroxisomal biogenesis and lipid metabolism. Elevated PPARα further improved peroxisome and mitochondrial function and strengthened peroxisome-mitochondria interactions, resulting in coordinated restoration of cellular redox and metabolic homeostasis. Compared with minoxidil treatment, nanozyme therapy produced greater regenerative responses and maintained therapeutic efficacy in immunodeficient settings. Spatial transcriptomic analysis further demonstrated an increased expression of keratin-associated proteins and cytoskeletal genes, consistent with activation of regenerative programs. These findings support a metabolism-focused therapeutic strategy targeting peroxisomal function in the treatment of alopecia.
https://doi.org/10.1021/acsnano.5c15733
Peroxisome
Hair follicle
Reactive oxygen species
Downregulation and upregulation
Mitochondrial biogenesis
Mitochondrion
Regeneration (biology)
Lipotoxicity
2
article
|
인용수 0
·
2025
Utility and occupancy driven pattern analysis for processing dynamic data streams in damped window control
Taewoong Ryu, Do Young Kim, Seungwan Park, Seongbin Park, Myungha Cho, Hanju Kim, Jun-Young Park, Hyeonmo Kim, Unil Yun
Knowledge-Based Systems
https://doi.org/10.1016/j.knosys.2025.114453
Data stream mining
Occupancy
Dynamic data
Scalability
Transaction data
Database transaction
Sliding window protocol
Data analysis
3
article
|
gold
·
인용수 1
·
2025
Nitazoxanide Modulates Mitochondrial Function and Inflammatory Metabolism in Chondrocytes from Patients with Osteoarthritis via AMPK/mTORC1 Signaling
Ha Eun Kim, Jong Yeong Lee, Ga‐Yeon Son, Jun-Young Park, Ki Bum Kim, Chulmin Choi, Young Jae Moon, Jin Kyeong Choi
Antioxidants
Osteoarthritis (OA) is a long-term degenerative condition of the joints, characterized by persistent inflammation, progressive cartilage breakdown, and impaired mitochondrial function. Recent studies have shown that hyperactivation of the mTORC1 pathway and metabolic reprogramming of chondrocytes contribute to disease progression. Nitazoxanide (NTZ), an oral antiparasitic agent approved by the Food and Drug Administration, has shown anti-inflammatory and mitochondrial protective effects in various disease situations; despite this, its application in osteoarthritis has yet to be fully investigated. Here, we assessed the therapeutic efficacy of NTZ using IL-1β-stimulated primary chondrocytes derived from patients with OA. NTZ substantially reduced the expression of proinflammatory cytokines and matrix metalloproteinases, restored mitochondrial membrane potential, and reduced mitochondrial reactive oxygen species levels. NTZ also effectively reversed IL-1β-induced glycolytic metabolic changes by inhibiting glucose uptake and GLUT1 expression. Mechanistically, NTZ inhibited the activation of the mTORC1 pathway and substantially increased AMPK phosphorylation. The siRNA-mediated AMPK knockdown negated NTZ-induced mitochondrial and metabolic improvements, suggesting that AMPK is a key upstream regulator of the protective actions of NTZ. NTZ can, therefore, effectively inhibit inflammatory metabolic reprogramming and mitochondrial dysfunction in OA chondrocytes through AMPK-dependent mTORC1 signaling inhibition, highlighting its potential as a disease-modifying therapy for OA.
https://doi.org/10.3390/antiox14050512
mTORC1
AMPK
Mitochondrion
MFN2
AMP-activated protein kinase
Pharmacology
Mitochondrial ROS
Cancer research
Proinflammatory cytokine
PI3K/AKT/mTOR pathway
최신 정부 과제
1
과제 전체보기
1
2022년 2월-2027년 2월
|110,554,000
난치성 췌장암 및 뇌암 환자 맞춤형 표적 나노 소포체 개발
○ 난치성 종양(췌장암 및 뇌암)으로의 선택적 표적 가능한“Unknown”종양 단백질 표적 소포체 개발○ 면역항암제 병용투여를 이용한 증폭된 항암효과 분석
줄기세포
나노소포체
표적항암제
췌장암
뇌암
연구실 하이라이트
연구실의 정보를 AI가 요약해서 키워드 중심으로 정리해두었어요
핵심공정기술
차세대 반도체 신뢰성 혁신, 저온 중수소 어닐링(LTDA) 기술
AI 요약 확인하기
기업협력
삼성전자 3nm 공정 개발 출신 연구책임자가 이끄는 산업 맞춤형 R&D
AI 요약 확인하기
상용화성공
연구에서 창업까지, 기술 상용화 역량 입증 (과기부 장관상 수상)
AI 요약 확인하기
미래기술
소자 스스로 손상을 복구하는 혁신, 자가 복구(Self-Healing) 반도체
AI 요약 확인하기
차세대소자
3nm 이하 차세대 로직 소자, 나노시트(MBCFET) 구조 최적화 기술
AI 요약 확인하기
독창적기술
복제 불가능한 하드웨어 보안, 채널 표면 공학 기반 PUF 기술
AI 요약 확인하기
맞춤형 인사이트 리포트
연구실의 전체 데이터를 활용한 맞춤형 인사이트 리포트
연구 트렌드부터 공동 연구 방향성 기획까지
연구실과 같이 할 수 있는게 무엇인지,
지금 바로 확인해보세요
무료 리포트 확인하기

주식회사 디써클

대표 장재우,이윤구서울특별시 강남구 역삼로 169, 명우빌딩 2층 (TIPS타운 S2)대표 전화 0507-1312-6417이메일 info@rndcircle.io사업자등록번호 458-87-03380호스팅제공자 구글 클라우드 플랫폼(GCP)

© 2026 RnDcircle. All Rights Reserved.