-
1
-
-
77749233821
-
Wound trauma increases radiation-induced mortality by increasing iNOS, cytokine concentrations, and bacterial infections
-
Kiang JG, Jiao W, Cary L, et al. Wound trauma increases radiation-induced mortality by increasing iNOS, cytokine concentrations, and bacterial infections. Radiat Res. 2010; 173: 319-32.
-
(2010)
Radiat Res
, vol.173
, pp. 319-332
-
-
Kiang, J.G.1
Jiao, W.2
Cary, L.3
-
2
-
-
0024252149
-
Stromal stem cells: marrow-derived osteogenic precursors
-
Owen M, Friedenstein AJ. Stromal stem cells: marrow-derived osteogenic precursors. Ciba Found Symp. 1988; 136: 42-60.
-
(1988)
Ciba Found Symp
, vol.136
, pp. 42-60
-
-
Owen, M.1
Friedenstein, A.J.2
-
3
-
-
0032859895
-
Bone marrow stromal cells: characterization and clinical application
-
Krebsbach PH, Kuznetsov SA, Bianco P, et al. Bone marrow stromal cells: characterization and clinical application. Crit Rev Oral Biol Med. 1999; 10: 165-81.
-
(1999)
Crit Rev Oral Biol Med
, vol.10
, pp. 165-181
-
-
Krebsbach, P.H.1
Kuznetsov, S.A.2
Bianco, P.3
-
4
-
-
12944297741
-
Bone marrow subendosteal microenvironment harbours functionally distinct haemosupportive stromal cell populations
-
Balduino A, Hurtado SP, Frazão P, et al. Bone marrow subendosteal microenvironment harbours functionally distinct haemosupportive stromal cell populations. Cell Tissue Res. 2005; 319: 255-66.
-
(2005)
Cell Tissue Res
, vol.319
, pp. 255-266
-
-
Balduino, A.1
Hurtado, S.P.2
Frazão, P.3
-
5
-
-
60649108441
-
Bone marrow-derived stem cells and radiation response
-
Greenberger JS, Epperly M. Bone marrow-derived stem cells and radiation response. Semin Radiat Oncol. 2009; 19: 133-9.
-
(2009)
Semin Radiat Oncol
, vol.19
, pp. 133-139
-
-
Greenberger, J.S.1
Epperly, M.2
-
6
-
-
84877269093
-
Autophagy-mediated defense response of mouse mesenchymal stromal cells (MSCs) to challenge with Escherichia coli
-
Cai J, editor. Rijeka: InTech Open Access Publisher.
-
Gorbunov NV, Garrison BR, Zhai M, et al. Autophagy-mediated defense response of mouse mesenchymal stromal cells (MSCs) to challenge with Escherichia coli. In: Cai J, editor. Protein interaction/book 1. Rijeka: InTech Open Access Publisher; 2013. pp. 23-44.
-
(2013)
Protein interaction/book 1
, pp. 23-44
-
-
Gorbunov, N.V.1
Garrison, B.R.2
Zhai, M.3
-
7
-
-
0028047262
-
Dynamics of mitochondria in living cells: shape changes, dislocations, fusion, and fission of mitochondria
-
Bereiter-Hahn J, Voth M. Dynamics of mitochondria in living cells: shape changes, dislocations, fusion, and fission of mitochondria. Microsc Res Tech. 1994; 27: 198-219.
-
(1994)
Microsc Res Tech
, vol.27
, pp. 198-219
-
-
Bereiter-Hahn, J.1
Voth, M.2
-
8
-
-
13644271262
-
Mitochondrial regular arrangement in muscle cells: a "crystal-like" pattern
-
Vendelin M, Beraud N, Guerrero K, et al. Mitochondrial regular arrangement in muscle cells: a "crystal-like" pattern. Am J Physiol Cell Physiol. 2005; 288: C757-67.
-
(2005)
Am J Physiol Cell Physiol
, vol.288
, pp. C757-C767
-
-
Vendelin, M.1
Beraud, N.2
Guerrero, K.3
-
9
-
-
17144429793
-
Mitochondrial function and actin regulate dynamin-related protein 1-dependent mitochondrial fission
-
De Vos KJ, Allan VJ, Grierson AJ, et al. Mitochondrial function and actin regulate dynamin-related protein 1-dependent mitochondrial fission. Curr Biol. 2005; 15: 678-83.
-
(2005)
Curr Biol
, vol.15
, pp. 678-683
-
-
De Vos, K.J.1
Allan, V.J.2
Grierson, A.J.3
-
10
-
-
84863430453
-
Mitophagy: a complex mechanism of mitochondrial removal
-
Novak I. Mitophagy: a complex mechanism of mitochondrial removal. Antioxid Redox Signal. 2012; 17: 794-802.
-
(2012)
Antioxid Redox Signal
, vol.17
, pp. 794-802
-
-
Novak, I.1
-
11
-
-
84868119744
-
Emergence of the mitochondrial reticulum from fission and fusion dynamics
-
Sukhorukov VM, Dikov D, Reichert AS, et al. Emergence of the mitochondrial reticulum from fission and fusion dynamics. PLoS Comput Biol. 2012; 8: e1002745.
-
(2012)
PLoS Comput Biol
, vol.8
, pp. e1002745
-
-
Sukhorukov, V.M.1
Dikov, D.2
Reichert, A.S.3
-
12
-
-
79952319773
-
Mitochondria removal by autophagy
-
Wang K, Klionsky DJ. Mitochondria removal by autophagy. Autophagy. 2011; 7: 297-300.
-
(2011)
Autophagy
, vol.7
, pp. 297-300
-
-
Wang, K.1
Klionsky, D.J.2
-
13
-
-
84871005673
-
The pathways of mitophagy for quality control and clearance of mitochondria
-
Ashrafi G, Schwarz TL. The pathways of mitophagy for quality control and clearance of mitochondria. Cell Death Differ. 2013; 20: 31-42.
-
(2013)
Cell Death Differ
, vol.20
, pp. 31-42
-
-
Ashrafi, G.1
Schwarz, T.L.2
-
14
-
-
84867773087
-
Mitophagy: mechanisms, pathophysiological roles, and analysis
-
Ding WX, Yin XM. Mitophagy: mechanisms, pathophysiological roles, and analysis. Biol Chem. 2012; 393: 547-64.
-
(2012)
Biol Chem
, vol.393
, pp. 547-564
-
-
Ding, W.X.1
Yin, X.M.2
-
15
-
-
84867273800
-
ROS-induced mitochondrial depolarization initiates PARK2/PARKIN-dependent mitochondrial degradation by autophagy
-
Wang Y, Nartiss Y, Steipe B, et al. ROS-induced mitochondrial depolarization initiates PARK2/PARKIN-dependent mitochondrial degradation by autophagy. Autophagy. 2012; 8: 1462-76.
-
(2012)
Autophagy
, vol.8
, pp. 1462-1476
-
-
Wang, Y.1
Nartiss, Y.2
Steipe, B.3
-
16
-
-
79955532516
-
TLR signalling augments macrophage bactericidal activity through mitochondrial ROS
-
West AP, Brodsky IE, Rahner C, et al. TLR signalling augments macrophage bactericidal activity through mitochondrial ROS. Nature. 2011; 472: 476-80.
-
(2011)
Nature
, vol.472
, pp. 476-480
-
-
West, A.P.1
Brodsky, I.E.2
Rahner, C.3
-
17
-
-
84870206960
-
Mitochondria: master regulators of danger signalling
-
Galluzzi L, Kepp O, Kroemer G. Mitochondria: master regulators of danger signalling. Nat Rev Mol Cell Biol. 2012; 13: 780-8.
-
(2012)
Nat Rev Mol Cell Biol
, vol.13
, pp. 780-788
-
-
Galluzzi, L.1
Kepp, O.2
Kroemer, G.3
-
18
-
-
0035166814
-
Dynamin-related protein Drp1 is required for mitochondrial division in mammalian cells
-
Smirnova E, Griparic L, Shurland DL, et al. Dynamin-related protein Drp1 is required for mitochondrial division in mammalian cells. Mol Biol Cell. 2001; 12: 2245-56.
-
(2001)
Mol Biol Cell
, vol.12
, pp. 2245-2256
-
-
Smirnova, E.1
Griparic, L.2
Shurland, D.L.3
-
19
-
-
0037455575
-
Mitofusins Mfn1 and Mfn2 coordinately regulate mitochondrial fusion and are essential for embryonic development
-
Chen H, Detmer SA, Ewald AJ, et al. Mitofusins Mfn1 and Mfn2 coordinately regulate mitochondrial fusion and are essential for embryonic development. J Cell Biol. 2003; 160: 189-200.
-
(2003)
J Cell Biol
, vol.160
, pp. 189-200
-
-
Chen, H.1
Detmer, S.A.2
Ewald, A.J.3
-
20
-
-
80054921669
-
All the little pieces. -Regulation of mitochondrial fusion and fission by ubiquitin and small ubiquitin-like modifer and their potential relevance in the heart
-
Zungu M, Schisler J, Willis MS. All the little pieces. -Regulation of mitochondrial fusion and fission by ubiquitin and small ubiquitin-like modifer and their potential relevance in the heart. Circ J. 2011; 75: 2513-21.
-
(2011)
Circ J
, vol.75
, pp. 2513-2521
-
-
Zungu, M.1
Schisler, J.2
Willis, M.S.3
-
21
-
-
84871802627
-
Recent advances into the understanding of mitochondrial fission
-
Elgass K, Pakay J, Ryan MT, et al. Recent advances into the understanding of mitochondrial fission. Biochim Biophys Acta. 2013; 1833: 150-61.
-
(2013)
Biochim Biophys Acta
, vol.1833
, pp. 150-161
-
-
Elgass, K.1
Pakay, J.2
Ryan, M.T.3
-
22
-
-
48849085973
-
Shaping mitochondria: The complex posttranslational regulation of the mitochondrial fission protein DRP1
-
Santel A, Frank S. Shaping mitochondria: The complex posttranslational regulation of the mitochondrial fission protein DRP1. IUBMB Life. 2008; 60: 448-55.
-
(2008)
IUBMB Life
, vol.60
, pp. 448-455
-
-
Santel, A.1
Frank, S.2
-
23
-
-
84871279726
-
Parkin and mitofusins reciprocally regulate mitophagy and mitochondrial spheroid formation
-
Ding WX, Guo F, Ni HM, et al. Parkin and mitofusins reciprocally regulate mitophagy and mitochondrial spheroid formation. J Biol Chem. 2012; 287: 42379-88.
-
(2012)
J Biol Chem
, vol.287
, pp. 42379-42388
-
-
Ding, W.X.1
Guo, F.2
Ni, H.M.3
-
24
-
-
75949130828
-
PINK1/Parkin-mediated mitophagy is dependent on VDAC1 and p62/SQSTM1
-
Geisler S, Holmström KM, Skujat D, et al. PINK1/Parkin-mediated mitophagy is dependent on VDAC1 and p62/SQSTM1. Nat Cell Biol. 2010; 12: 119-31.
-
(2010)
Nat Cell Biol
, vol.12
, pp. 119-131
-
-
Geisler, S.1
Holmström, K.M.2
Skujat, D.3
-
25
-
-
84857032953
-
Role of PINK1 binding to the TOM complex and alternate intracellular membranes in recruitment and activation of the E3 ligase Parkin
-
Lazarou M, Jin SM, Kane LA, et al. Role of PINK1 binding to the TOM complex and alternate intracellular membranes in recruitment and activation of the E3 ligase Parkin. Dev Cell. 2012; 22: 320-33.
-
(2012)
Dev Cell
, vol.22
, pp. 320-333
-
-
Lazarou, M.1
Jin, S.M.2
Kane, L.A.3
-
26
-
-
80053430054
-
Spatiotemporally controlled initiation of Parkin-mediated mitophagy within single cells
-
Yang JY, Yang WY. Spatiotemporally controlled initiation of Parkin-mediated mitophagy within single cells. Autophagy. 2011; 7: 1230-8.
-
(2011)
Autophagy
, vol.7
, pp. 1230-1238
-
-
Yang, J.Y.1
Yang, W.Y.2
-
27
-
-
84875892111
-
Autophagy as a stress-response and quality-control mechanism: implications for cell injury and human disease
-
Murrow L, Debnath J. Autophagy as a stress-response and quality-control mechanism: implications for cell injury and human disease. Annu Rev Pathol. 2013; 8: 105-37.
-
(2013)
Annu Rev Pathol
, vol.8
, pp. 105-137
-
-
Murrow, L.1
Debnath, J.2
-
28
-
-
78649833818
-
Human IRGM regulates autophagy and cell-autonomous immunity functions through mitochondria
-
Singh SB, Ornatowski W, Vergne I, et al. Human IRGM regulates autophagy and cell-autonomous immunity functions through mitochondria. Nat Cell Biol. 2010; 12: 1154-65.
-
(2010)
Nat Cell Biol
, vol.12
, pp. 1154-1165
-
-
Singh, S.B.1
Ornatowski, W.2
Vergne, I.3
-
29
-
-
84862295360
-
Guidelines for the use and interpretation of assays for monitoring autophagy
-
Klionsky DJ, Abdalla FC, Abeliovich H, et al. Guidelines for the use and interpretation of assays for monitoring autophagy. Autophagy. 2012; 8: 445-544.
-
(2012)
Autophagy
, vol.8
, pp. 445-544
-
-
Klionsky, D.J.1
Abdalla, F.C.2
Abeliovich, H.3
-
30
-
-
78649716384
-
How ubiquitination and autophagy participate in the regulation of the cell response to bacterial infection
-
Dupont N, Temime-Smaali N, Lafont F. How ubiquitination and autophagy participate in the regulation of the cell response to bacterial infection. Biol Cell. 2010; 102: 621-34.
-
(2010)
Biol Cell
, vol.102
, pp. 621-634
-
-
Dupont, N.1
Temime-Smaali, N.2
Lafont, F.3
-
31
-
-
84871891737
-
PINK1-mediated phosphorylation of the Parkin ubiquitin-like domain primes mitochondrial translocation of Parkin and regulates mitophagy
-
Shiba-Fukushima K, Imai Y, Yoshida S, et al. PINK1-mediated phosphorylation of the Parkin ubiquitin-like domain primes mitochondrial translocation of Parkin and regulates mitophagy. Sci Rep. 2012; 2: 1002.
-
(2012)
Sci Rep
, vol.2
, pp. 1002
-
-
Shiba-Fukushima, K.1
Imai, Y.2
Yoshida, S.3
-
32
-
-
0033767459
-
Parkin is associated with actin filaments in neuronal and non-neural cells
-
Huynh DP, Scoles DR, Ho TH, et al. Parkin is associated with actin filaments in neuronal and non-neural cells. Ann Neurol. 2000; 48: 737-44.
-
(2000)
Ann Neurol
, vol.48
, pp. 737-744
-
-
Huynh, D.P.1
Scoles, D.R.2
Ho, T.H.3
-
33
-
-
70349263992
-
Innate immunity turned inside-out: antimicrobial defense by phagocyte extracellular traps
-
von Köckritz-Blickwede M, Nizet V. Innate immunity turned inside-out: antimicrobial defense by phagocyte extracellular traps. J Mol Med (Berl). 2009; 87: 775-83.
-
(2009)
J Mol Med (Berl)
, vol.87
, pp. 775-783
-
-
von Köckritz-Blickwede, M.1
Nizet, V.2
-
34
-
-
0037107564
-
Establishment of a novel clonal murine bone marrow stromal cell line for assessment of p53 responses to genotoxic stress
-
Gorbunov NV, Morris JE, Greenberger JS, et al. Establishment of a novel clonal murine bone marrow stromal cell line for assessment of p53 responses to genotoxic stress. Toxicology. 2002; 179: 257-66.
-
(2002)
Toxicology
, vol.179
, pp. 257-266
-
-
Gorbunov, N.V.1
Morris, J.E.2
Greenberger, J.S.3
-
35
-
-
84857217832
-
ER stress and its functional link to mitochondria: role in cell survival and death
-
Malhotra JD, Kaufman RJ. ER stress and its functional link to mitochondria: role in cell survival and death. Cold Spring Harb Perspect Biol. 2011; 3: a004424.
-
(2011)
Cold Spring Harb Perspect Biol
, vol.3
, pp. a004424
-
-
Malhotra, J.D.1
Kaufman, R.J.2
-
36
-
-
84934439233
-
Staphylococcus epidermidis pathogenesis
-
Otto M. Staphylococcus epidermidis pathogenesis. Methods Mol Biol. 2014; 1106: 17-31.
-
(2014)
Methods Mol Biol
, vol.1106
, pp. 17-31
-
-
Otto, M.1
-
37
-
-
78449241968
-
Staphylococcus epidermidis strategies to avoid killing by human neutrophils
-
Cheung GY, Rigby K, Wang R, et al. Staphylococcus epidermidis strategies to avoid killing by human neutrophils. PLoS Pathog. 2010; 6: e1001133.
-
(2010)
PLoS Pathog
, vol.6
, pp. e1001133
-
-
Cheung, G.Y.1
Rigby, K.2
Wang, R.3
-
38
-
-
0033559244
-
An inflammatory polypeptide complex from Staphylococcus epidermidis: isolation and characterization
-
Mehlin C, Headley CM, Klebanoff SJ. An inflammatory polypeptide complex from Staphylococcus epidermidis: isolation and characterization. J Exp Med. 1999; 189: 907-18.
-
(1999)
J Exp Med
, vol.189
, pp. 907-918
-
-
Mehlin, C.1
Headley, C.M.2
Klebanoff, S.J.3
-
39
-
-
84877257995
-
Adaptive redox response of mesenchymal stromal cells to stimulation with lipopolysaccharide inflammagen: mechanisms of remodeling of tissue barriers in sepsis
-
Gorbunov NV, Garrison BR, McDaniel DP, et al. Adaptive redox response of mesenchymal stromal cells to stimulation with lipopolysaccharide inflammagen: mechanisms of remodeling of tissue barriers in sepsis. Oxid Med Cell Longev. 2013; 2013: 186795.
-
(2013)
Oxid Med Cell Longev
, vol.2013
, pp. 186795
-
-
Gorbunov, N.V.1
Garrison, B.R.2
McDaniel, D.P.3
-
40
-
-
78549296763
-
Acetylated microtubules are required for fusion of autophagosomes with lysosomes
-
Xie R, Nguyen S, McKeehan WL, et al. Acetylated microtubules are required for fusion of autophagosomes with lysosomes. BMC Cell Biol. 2010; 11: 89.
-
(2010)
BMC Cell Biol
, vol.11
, pp. 89
-
-
Xie, R.1
Nguyen, S.2
McKeehan, W.L.3
-
41
-
-
83455162851
-
Method of bacterial killing differentially affects the human innate immune response to Staphylococcus epidermidis
-
Strunk T, Richmond P, Prosser A, et al. Method of bacterial killing differentially affects the human innate immune response to Staphylococcus epidermidis. Innate Immun. 2011; 17: 508-16.
-
(2011)
Innate Immun
, vol.17
, pp. 508-516
-
-
Strunk, T.1
Richmond, P.2
Prosser, A.3
-
42
-
-
32544448056
-
Role of mitochondria as the gardens of cell death
-
Kim R, Emi M, Tanabe K. Role of mitochondria as the gardens of cell death. Cancer Chemother Pharmacol. 2006; 57: 545-53.
-
(2006)
Cancer Chemother Pharmacol
, vol.57
, pp. 545-553
-
-
Kim, R.1
Emi, M.2
Tanabe, K.3
-
43
-
-
84860705893
-
Mitochondrial DNA that escapes from autophagy causes inflammation and heart failure
-
Oka T, Hikoso S, Yamaguchi O, et al. Mitochondrial DNA that escapes from autophagy causes inflammation and heart failure. Nature. 2012; 485: 251-5.
-
(2012)
Nature
, vol.485
, pp. 251-255
-
-
Oka, T.1
Hikoso, S.2
Yamaguchi, O.3
-
44
-
-
84862908207
-
Cell death and infection: a double-edged sword for host and pathogen survival
-
Ashida H, Mimuro H, Ogawa M, et al. Cell death and infection: a double-edged sword for host and pathogen survival. J Cell Biol. 2011; 195: 931-42.
-
(2011)
J Cell Biol
, vol.195
, pp. 931-942
-
-
Ashida, H.1
Mimuro, H.2
Ogawa, M.3
-
45
-
-
84896996310
-
Pegylated G-CSF inhibits blood cell depletion, increases platelets, blocks splenomegaly, and improves survival after whole-body ionizing irradiation but not after irradiation combined with burn
-
Kiang JG, Zhai M, Liao PJ, et al. Pegylated G-CSF inhibits blood cell depletion, increases platelets, blocks splenomegaly, and improves survival after whole-body ionizing irradiation but not after irradiation combined with burn. Oxid Med Cell Longev. 2014; 2014: 481392.
-
(2014)
Oxid Med Cell Longev
, vol.2014
, pp. 481392
-
-
Kiang, J.G.1
Zhai, M.2
Liao, P.J.3
|