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Yuechen Han

Shandong University · CN
Area of research
Sensory Systems · Neurology
Research interest
Research focused on Spiral ganglion and Cell biology, with related work in Cisplatin, Cochlea, MYB. Notable publications include 'PRDX1 activates autophagy via the PTEN-AKT signaling pathway to protect against cisplatin-induced spiral ganglion neuron damage', 'Wnt Signaling Activates TP53-Induced Glycolysis and Apoptosis Regulator and Protects Against Cisplatin-Induced Spiral Ganglion Neuron Damage in the Mouse Cochlea', and 'Meclofenamic Acid Reduces Reactive Oxygen Species Accumulation and Apoptosis, Inhibits Excessive Autophagy, and Protects Hair Cell-Like HEI-OC1 Cells From Cisplatin-Induced Damage'.
h-index
citations
662
works
10
NIH funding
primary concept
email

Recent publications

Wnt signalling facilitates neuronal differentiation of cochlear Frizzled10-positive cells in mouse cochlea via glypican 6 modulation
Cell Communication and Signaling 2025cited by 4position: middledoi
A Trial of Semicircular Canal Plugging vs. Intratympanic Gentamicin for Menière's Disease
The Laryngoscope 2025cited by 0position: middledoi
FOXO1‐NCOA4 Axis Contributes to Cisplatin‐Induced Cochlea Spiral Ganglion Neuron Ferroptosis via Ferritinophagy
Advanced Science 2024cited by 33position: middledoi
c-Myb protects cochlear hair cells from cisplatin-induced damage via the PI3K/Akt signaling pathway
Cell Death Discovery 2022cited by 30position: middledoi
PRDX1 activates autophagy via the PTEN-AKT signaling pathway to protect against cisplatin-induced spiral ganglion neuron damage
Autophagy 2021cited by 218position: middledoi
Wnt Signaling Activates TP53-Induced Glycolysis and Apoptosis Regulator and Protects Against Cisplatin-Induced Spiral Ganglion Neuron Damage in the Mouse Cochlea
Antioxidants and Redox Signaling 2018cited by 121position: middledoi
Meclofenamic Acid Reduces Reactive Oxygen Species Accumulation and Apoptosis, Inhibits Excessive Autophagy, and Protects Hair Cell-Like HEI-OC1 Cells From Cisplatin-Induced Damage
Frontiers in Cellular Neuroscience 2018cited by 85position: middledoi
c-Myb knockdown increases the neomycin-induced damage to hair-cell-like HEI-OC1 cells in vitro
Scientific Reports 2017cited by 61position: middledoi
A Three-Dimensional Culture System with Matrigel Promotes Purified Spiral Ganglion Neuron Survival and Function In Vitro
Molecular Neurobiology 2017cited by 52position: middledoi
The Three-Dimensional Culture System with Matrigel and Neurotrophic Factors Preserves the Structure and Function of Spiral Ganglion Neuron<i>In Vitro</i>
Neural Plasticity 2016cited by 58position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Haibo Wang · The Third People's Hospital of Dalian City9 papers (2016–2025)Renjie Chai · Fudan University8 papers (2016–2025)Daogong Zhang · Shandong University7 papers (2016–2025)Zhaomin Fan · Shandong University6 papers (2016–2025)Wenwen Liu · Shandong University5 papers (2017–2025)Gaoying Sun · Shandong University5 papers (2016–2021)Xue Wang · Shandong University4 papers (2018–2025)Jianfeng Li · Fudan University4 papers (2017–2018)Jieyu Qi · Beijing Institute of Technology3 papers (2016–2017)Man Wang · Shandong University3 papers (2021–2025)Shasha Zhang · University of Science and Technology Beijing3 papers (2016–2018)Xiaohui Bai · New York University2 papers (2016–2018)Mingliang Tang · Nantong University2 papers (2017–2018)Yongdong Song · Shandong University2 papers (2018–2025)Wenwen Liu · Shandong University2 papers (2022–2024)Mingming Wang · Shandong University2 papers (2017–2018)Xiaofei Li · Xi'an University of Science and Technology2 papers (2018–2025)Yu Meng · Shandong University2 papers (2024–2025)Weibin An · Shandong University2 papers (2024–2025)Jing Wang · Capital Normal University1 papers (2025–2025)