Automated Author Profile

Komatsu, Masaaki

Current S-Index

8.0

Sum of Dataset Indices for all datasets

Average Dataset Index per Dataset

0.7

Average Dataset Index per dataset

Total Datasets

12

Total datasets for this author

Average FAIR Score

79.5%

Average FAIR Score per dataset

Total Citations

5

Total citations to the author's datasets

Total Mentions

0

Total mentions of the author's datasets

S-Index Interpretation

S-Index Over Time

Cumulative Citations Over Time

Cumulative Mentions Over Time

Datasets

NMR analysis of autophagy-related protein, Atg8 in the lipidated form.

NMR spectra for free Atg8, lipidated Atg8 and delipidated Atg8 described in the article.

Authors

  • Maruayama, Tatsuro ;
  • Alam, Jahangir Md. ;
  • Fukuda, Tomoyuki ;
  • Kageyama, Shun ;
  • Kirisako, Hiromi ;
  • Ishii, Yuki ;
  • Shimada, Ichio ;
  • Ohsumi, Yoshinori ;
  • Komatsu, Masaaki ;
  • Kanki, Tomotake ;
  • Nakatogawa, Hitoshi ;
  • N. Noda, Nobuo
0 Citations0 Mentions85% FAIR0.7 Dataset Index
10.6084/m9.figshare.147279032021

NMR analysis of autophagy-related protein, Atg8 in the lipidated form.

NMR spectra for free Atg8, lipidated Atg8 and delipidated Atg8 described in the article.

Authors

  • Maruayama, Tatsuro ;
  • Alam, Jahangir Md. ;
  • Fukuda, Tomoyuki ;
  • Kageyama, Shun ;
  • Kirisako, Hiromi ;
  • Ishii, Yuki ;
  • Shimada, Ichio ;
  • Ohsumi, Yoshinori ;
  • Komatsu, Masaaki ;
  • Kanki, Tomotake ;
  • Nakatogawa, Hitoshi ;
  • N. Noda, Nobuo
0 Citations0 Mentions85% FAIR0.4 Dataset Index
10.6084/m9.figshare.14727903.v12021

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

Authors

  • Komatsu, Masaaki
0 Citations0 Mentions85% FAIR0.5 Dataset Index
10.6084/m9.figshare.13218746.v22020

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

Authors

  • Komatsu, Masaaki
0 Citations0 Mentions85% FAIR0.5 Dataset Index
10.6084/m9.figshare.132187462020

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

p62/SQSTM1-droplet serves as a platform for autophagosome formation and anti-oxidative stress response

Authors

  • Komatsu, Masaaki
1 Citation0 Mentions85% FAIR1.0 Dataset Index
10.6084/m9.figshare.13218746.v12020

<i>Atg9a</i> deficiency causes axon-specific lesions including neuronal circuit dysgenesis

Conditional knockout mice for Atg9a, specifically in brain tissue, were generated to understand the roles of ATG9A in the neural tissue cells. The mice were born normally, but half of them died within one wk, and none lived beyond 4 wk of age. SQSTM1/p62 and NBR1, receptor proteins for selective autophagy, together with ubiquitin, accumulated in Atg9a-deficient neurosoma at postnatal d 15 (P15), indicating an inhibition of autophagy, whereas these proteins were significantly decreased at P28, as evidenced by immunohistochemistry, electron microscopy and western blot. Conversely, degenerative changes such as spongiosis of nerve fiber tracts proceeded in axons and their terminals that were occupied with aberrant membrane structures and amorphous materials at P28, although no clear-cut degenerative change was detected in neuronal cell bodies. Different from autophagy, diffusion tensor magnetic resonance imaging and histological observations revealed Atg9a-deficiency-induced dysgenesis of the corpus callosum and anterior commissure. As for the neurite extensions of primary cultured neurons, the neurite outgrowth after 3 d culturing was significantly impaired in primary neurons from atg9a-KO mouse brains, but not in those from atg7-KO and atg16l1-KO brains. Moreover, this tendency was also confirmed in Atg9a-knockdown neurons under an atg7-KO background, indicating the role of ATG9A in the regulation of neurite outgrowth that is independent of autophagy. These results suggest that Atg9a deficiency causes progressive degeneration in the axons and their terminals, but not in neuronal cell bodies, where the degradations of SQSTM1/p62 and NBR1 were insufficiently suppressed. Moreover, the deletion of Atg9a impaired nerve fiber tract formation.

Authors

  • Yamaguchi, Junji ;
  • Chigure Suzuki ;
  • Nanao, Tomohisa ;
  • Soichirou Kakuta ;
  • Ozawa, Kentarou ;
  • Isei Tanida ;
  • Saitoh, Tatsuya ;
  • Sunabori, Takehiko ;
  • Komatsu, Masaaki ;
  • Tanaka, Keiji ;
  • Aoki, Shigeki ;
  • Sakimura, Kenji ;
  • Uchiyama, Yasuo
1 Citation0 Mentions85% FAIR0.8 Dataset Index
10.6084/m9.figshare.5012378.v22019

Loss of autophagy in chondrocytes causes severe growth retardation

Chondrogenesis is accompanied by not only cellular renovation, but also metabolic stress. Therefore, macroautophagy/autophagy is postulated to be involved in this process. Previous reports have shown that suppression of autophagy during chondrogenesis causes mild growth retardation. However, the role of autophagy in chondrocyte differentiation still largely remains unclear. Here, we show the important role of autophagy on chondrogenesis. The transition of mesenchymal cells to chondrocytes was severely impaired by ablation of Atg7, a gene essential for autophagy. Mice lacking Atg7 after the transition exhibited phenotypes severer than mutant mice in which Atg7 was removed before the transition. Atg7-deficient chondrocytes accumulated large numbers of glycogen granules, hardly proliferate and died specifically in the proliferative zone without any ER-stress signal. Our results suggest that the suppression of autophagy in prechondrogenic cells drives compensatory mechanism(s) that mitigate defective chondrogenesis, and that autophagy participates in glycogenolysis to supply glucose in avascular growth plates. DDIT3/CHOP: DNA damage inducible transcript 3; ER: endoplasmic reticulum; NFE2L2/NRF2: nuclear factor, erythroid derived 2, like 2; SQSTM1/p62: sequestosome 1; STBD1: starch-binding domain-containing protein 1

Authors

  • Horigome, Yoji ;
  • Ida-Yonemochi, Hiroko ;
  • Waguri, Satoshi ;
  • Shibata, Shunichi ;
  • Endo, Naoto ;
  • Komatsu, Masaaki
1 Citation0 Mentions85% FAIR0.9 Dataset Index
10.6084/m9.figshare.82822132019

Loss of autophagy in chondrocytes causes severe growth retardation

Chondrogenesis is accompanied by not only cellular renovation, but also metabolic stress. Therefore, macroautophagy/autophagy is postulated to be involved in this process. Previous reports have shown that suppression of autophagy during chondrogenesis causes mild growth retardation. However, the role of autophagy in chondrocyte differentiation still largely remains unclear. Here, we show the important role of autophagy on chondrogenesis. The transition of mesenchymal cells to chondrocytes was severely impaired by ablation of Atg7, a gene essential for autophagy. Mice lacking Atg7 after the transition exhibited phenotypes severer than mutant mice in which Atg7 was removed before the transition. Atg7-deficient chondrocytes accumulated large numbers of glycogen granules, hardly proliferate and died specifically in the proliferative zone without any ER-stress signal. Our results suggest that the suppression of autophagy in prechondrogenic cells drives compensatory mechanism(s) that mitigate defective chondrogenesis, and that autophagy participates in glycogenolysis to supply glucose in avascular growth plates. DDIT3/CHOP: DNA damage inducible transcript 3; ER: endoplasmic reticulum; NFE2L2/NRF2: nuclear factor, erythroid derived 2, like 2; SQSTM1/p62: sequestosome 1; STBD1: starch-binding domain-containing protein 1

Authors

  • Horigome, Yoji ;
  • Ida-Yonemochi, Hiroko ;
  • Waguri, Satoshi ;
  • Shibata, Shunichi ;
  • Endo, Naoto ;
  • Komatsu, Masaaki
1 Citation0 Mentions85% FAIR0.9 Dataset Index
10.6084/m9.figshare.8282213.v12019

<i>Atg9a</i> deficiency causes axon-specific lesions including neuronal circuit dysgenesis

Conditional knockout mice for Atg9a, specifically in brain tissue, were generated to understand the roles of ATG9A in the neural tissue cells. The mice were born normally, but half of them died within one wk, and none lived beyond 4 wk of age. SQSTM1/p62 and NBR1, receptor proteins for selective autophagy, together with ubiquitin, accumulated in Atg9a-deficient neurosoma at postnatal d 15 (P15), indicating an inhibition of autophagy, whereas these proteins were significantly decreased at P28, as evidenced by immunohistochemistry, electron microscopy and western blot. Conversely, degenerative changes such as spongiosis of nerve fiber tracts proceeded in axons and their terminals that were occupied with aberrant membrane structures and amorphous materials at P28, although no clear-cut degenerative change was detected in neuronal cell bodies. Different from autophagy, diffusion tensor magnetic resonance imaging and histological observations revealed Atg9a-deficiency-induced dysgenesis of the corpus callosum and anterior commissure. As for the neurite extensions of primary cultured neurons, the neurite outgrowth after 3 d culturing was significantly impaired in primary neurons from atg9a-KO mouse brains, but not in those from atg7-KO and atg16l1-KO brains. Moreover, this tendency was also confirmed in Atg9a-knockdown neurons under an atg7-KO background, indicating the role of ATG9A in the regulation of neurite outgrowth that is independent of autophagy. These results suggest that Atg9a deficiency causes progressive degeneration in the axons and their terminals, but not in neuronal cell bodies, where the degradations of SQSTM1/p62 and NBR1 were insufficiently suppressed. Moreover, the deletion of Atg9a impaired nerve fiber tract formation.

Authors

  • Yamaguchi, Junji ;
  • Chigure Suzuki ;
  • Nanao, Tomohisa ;
  • Soichirou Kakuta ;
  • Ozawa, Kentarou ;
  • Isei Tanida ;
  • Saitoh, Tatsuya ;
  • Sunabori, Takehiko ;
  • Komatsu, Masaaki ;
  • Tanaka, Keiji ;
  • Aoki, Shigeki ;
  • Sakimura, Kenji ;
  • Uchiyama, Yasuo
0 Citations0 Mentions81% FAIR0.5 Dataset Index
10.6084/m9.figshare.50123782019

<i>Atg9a</i> deficiency causes axon-specific lesions including neuronal circuit dysgenesis

Conditional knockout mice for Atg9a, specifically in brain tissue, were generated to understand the roles of ATG9A in the neural tissue cells. The mice were born normally, but half of them died within one wk, and none lived beyond 4 wk of age. SQSTM1/p62 and NBR1, receptor proteins for selective autophagy, together with ubiquitin, accumulated in Atg9a-deficient neurosoma at postnatal d 15 (P15), indicating an inhibition of autophagy, whereas these proteins were significantly decreased at P28, as evidenced by immunohistochemistry, electron microscopy and western blot. Conversely, degenerative changes such as spongiosis of nerve fiber tracts proceeded in axons and their terminals that were occupied with aberrant membrane structures and amorphous materials at P28, although no clear-cut degenerative change was detected in neuronal cell bodies. Different from autophagy, diffusion tensor magnetic resonance imaging and histological observations revealed Atg9a-deficiency-induced dysgenesis of the corpus callosum and anterior commissure. As for the neurite extensions of primary cultured neurons, the neurite outgrowth after 3 d culturing was significantly impaired in primary neurons from atg9a-KO mouse brains, but not in those from atg7-KO and atg16l1-KO brains. Moreover, this tendency was also confirmed in Atg9a-knockdown neurons under an atg7-KO background, indicating the role of ATG9A in the regulation of neurite outgrowth that is independent of autophagy. These results suggest that Atg9a deficiency causes progressive degeneration in the axons and their terminals, but not in neuronal cell bodies, where the degradations of SQSTM1/p62 and NBR1 were insufficiently suppressed. Moreover, the deletion of Atg9a impaired nerve fiber tract formation.

Authors

  • Yamaguchi, Junji ;
  • Chigure Suzuki ;
  • Nanao, Tomohisa ;
  • Soichirou Kakuta ;
  • Ozawa, Kentarou ;
  • Isei Tanida ;
  • Saitoh, Tatsuya ;
  • Sunabori, Takehiko ;
  • Komatsu, Masaaki ;
  • Tanaka, Keiji ;
  • Aoki, Shigeki ;
  • Sakimura, Kenji ;
  • Uchiyama, Yasuo
1 Citation0 Mentions81% FAIR0.9 Dataset Index
10.6084/m9.figshare.5012378.v12017