anti calbindin Search Results


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Santa Cruz Biotechnology calbindin d9k
Figure 3. Expression of calcium transport proteins in the kidney. (A and B) The protein levels of calcium transporters [transient receptor potential vanilloid (TRPV)5, TRPV6, <t>calbindin-D9k</t> (CaBP-9k) and plasma membrane Ca2+-ATPase1 (PMCA1)] were measured in the kidney. Values are expressed as the means ± SEM, n=8 in each group. *P<0.05 versus vehicle group; #P<0.05 versus dexamethasone (DXM) group. Vehicle, vehicle group (n=8); DXM group, mice were injected intramuscularly with 5 mg/kg body weight DXM three times/week for 12 weeks (n=8); ALN group, mice rece ived alendronate orally at a dose of 0.1 mg/kg/day in combination with DXM for 12 weeks (n=8); pomegranate seed (PS) group, mice received daily drinks of aqueous extract of pomegranate seed (AE-PS) in combination with DXM for 12 weeks (n=8).
Calbindin D9k, supplied by Santa Cruz Biotechnology, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Proteintech calretinin
(A) Human organotypic slice model. The human neocortex (middle and inferior temporal gyri; left) was sectioned at 350 μm and cultured on semi-permeable membranes for up to 16 days in vitro (DIV; right). CellREADR AAV vectors were applied to slices on DIV0. Orientation: A, anterior; D, dorsal; P, posterior; V, ventral. (B) Schematic of CellREADR design. In the single-virus design (left), binding of the sensor to the target initiates ADAR-mediated editing of a stop codon to express the downstream effector (mNeon). The binary system (right) uses a CellREADR virus (top right) to drive expression of tTA2 (Tet-advanced transactivator). A reporter virus, conditionally expressing a selected effector molecule (e.g., mNeon, ChIEF, or GCamp7f) under the control of the Tet-responsive element (TRE), is co-applied. (C) CellREADR targeting of diverse neuronal populations. Binary CellREADRs (mNeonGreen) designed against somatostatin ( SST ), Unc-5 netrin receptor B ( UNC5B ), parvalbumin ( PVALB ), forkhead box protein P2 ( FOXP2 ), and <t>calretinin</t> ( CALB2 ) were applied to the neocortex of at least 3 donors. Slices were immunostained for mNeon at DIV7. The CellREADR binary system drove robust expression of mNeon in differing lamina and in cells of various morphologies. Magnified images are indicated by dashed red boxes; throughout, pia and white matter (WM) are illustrated with dotted lines. Scale bars: 200 μm (large image) and 50 μm (magnified image). (D) Histological analysis of binary FOXP2 and CALB2 CellREADR targeting. CellREADR mNeon distribution (green, left) and protein expression of target (purple, middle) are depicted at DIV7. Fluorescence intensity profiles at far left reveal the depth distribution of cells targeted by CellREADR. Dashed boxes indicate areas depicted in (F). Scale bars: 200 μm. (E) Localization of CellREADR-targeted cells. CellREADR mNeon fluorescence intensity profiles measured across the depth of the cortex (0% = pial surface, 100% = WM boundary) averaged from 6 slices (tissues from 3 donors). The solid line shows the mean; the shaded area shows the SEM. FOXP2 -mNeon was relatively uniform throughout cortical layers, while CALB2 -mNeon was more restricted to outer layers. (F) Immunohistochemical characterization of CellREADR specificity. Representative images showing colocalization of CellREADR-mNeon with the corresponding target. Scale bars: 50 μm. (G) Quantification of CellREADR specificities as measured by immunostaining. Each point denotes the specificity of labeling measured from an individual donor’s tissue ( FOXP2 , n = 5 donors; binary CALB2 , n = 7; singular CALB2 , n = 3). Horizontal bars indicate mean specificity values for each CellREADR. Throughout the figures, data are presented as mean ± SEM. (H) Benchmarking CellREADR efficiency with a human interneuron enhancer virus DLX2.0-YFP. CALB2 CellREADR and DLX2.0-YFP viruses (rAAV2-retro) were applied to slices cut sequentially from the same neocortical tissue specimen. Tissue was immunostained at DIV7 against mNeon or YFP. Slice boundaries are indicated by the solid white line, and the WM is demarcated by a dashed white line; boxes mark the inset images on the bottom. Scale bars: 1 mm (top images) and 200 μm (bottom images). (I) Localization of DLX2.0-YFP expression. Representative image illustrating the efficiency and distribution of labeling achieved with a DLX2.0-YFP virus (left), with fluorescence intensity profile (right; averages from 3 donors) illustrating the distribution of labeled cells. Compared to CALB2 CellREADR labeling (D and H), DLX2.0-YFP + cells were less concentrated in the outer cortex. Scale bar: 250 μm. (J) DLX2.0-YFP targeting of the CALB2 population. Quantification of colocalization of DLX2.0-YFP expression and CALB2 measured by immunostaining (images not shown); note the inter-subject variability in the targeting of CALB2 cells ( n = 7 donors). (K) Efficiency of binary and singular CALB2 CellREADRs compared to DLX2.0-YFP enhancer virus. Quantification of cells labeled at DIV7 per unit area (binary CALB2 , n = 6 donors; singular CALB2 , n = 3; DLX2.0-YFP, n = 3). Note that although the CellREADRs were designed to target only CALB2 interneurons rather than multiple interneuron subclasses, they labeled more cells than the DLX2.0 virus (one-way ANOVA with Tukey’s post hoc).
Calretinin, supplied by Proteintech, used in various techniques. Bioz Stars score: 93/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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ProSci Incorporated cal1 cal2 primers

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R&D Systems calb1
(A) Rgs6 expression revealed by immunohistofluorescence (red) together with TH (green) in mDA neurons of SNc but not VTA. Scale bar 410 µm. (B) Co-immunofluorescence analysis of TH (green) and Rgs6 or Pitx3 (red, as indicated) in SNc and VTA of adult mice. Arrowheads point to Pitx3-negative or Rgs6-negative mDA neurons in dorsal SNc. Scale bar 100 µm. (C) Triple immunofluorescence staining for TH (green), Pitx3 (red) and <t>Calb1</t> (blue) on tissue sections of adult mice indicates that the majority of TH+Pitx3− cells of dSNc (arrowheads) are positive for Calb1, while TH+Pitx3+ cells of vSNc are negative for Calb1, consistent with depiction in A. Scale bar 100 µm.
Calb1, supplied by R&D Systems, used in various techniques. Bioz Stars score: 91/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
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Biorbyt calbindin orb5912
Summary of primary antibodies and detection systems used.
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Novus Biologicals rabbit anti calbindin d 28k antibody
Summary of primary antibodies and detection systems used.
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Image Search Results


Figure 3. Expression of calcium transport proteins in the kidney. (A and B) The protein levels of calcium transporters [transient receptor potential vanilloid (TRPV)5, TRPV6, calbindin-D9k (CaBP-9k) and plasma membrane Ca2+-ATPase1 (PMCA1)] were measured in the kidney. Values are expressed as the means ± SEM, n=8 in each group. *P<0.05 versus vehicle group; #P<0.05 versus dexamethasone (DXM) group. Vehicle, vehicle group (n=8); DXM group, mice were injected intramuscularly with 5 mg/kg body weight DXM three times/week for 12 weeks (n=8); ALN group, mice rece ived alendronate orally at a dose of 0.1 mg/kg/day in combination with DXM for 12 weeks (n=8); pomegranate seed (PS) group, mice received daily drinks of aqueous extract of pomegranate seed (AE-PS) in combination with DXM for 12 weeks (n=8).

Journal: International journal of molecular medicine

Article Title: Aqueous extract of pomegranate seed attenuates glucocorticoid-induced bone loss and hypercalciuria in mice: A comparative study with alendronate.

doi: 10.3892/ijmm.2016.2622

Figure Lengend Snippet: Figure 3. Expression of calcium transport proteins in the kidney. (A and B) The protein levels of calcium transporters [transient receptor potential vanilloid (TRPV)5, TRPV6, calbindin-D9k (CaBP-9k) and plasma membrane Ca2+-ATPase1 (PMCA1)] were measured in the kidney. Values are expressed as the means ± SEM, n=8 in each group. *P<0.05 versus vehicle group; #P<0.05 versus dexamethasone (DXM) group. Vehicle, vehicle group (n=8); DXM group, mice were injected intramuscularly with 5 mg/kg body weight DXM three times/week for 12 weeks (n=8); ALN group, mice rece ived alendronate orally at a dose of 0.1 mg/kg/day in combination with DXM for 12 weeks (n=8); pomegranate seed (PS) group, mice received daily drinks of aqueous extract of pomegranate seed (AE-PS) in combination with DXM for 12 weeks (n=8).

Article Snippet: After saturation with 5% (w/v) non-fat dry milk in Tris-buffered saline (TBS) and 0.1% (w/v) Tween-20 (TBST), the membranes were incubated with the following antibodies: transient receptor potential vanilloid (TRPV)5 (sc-398345; 1:500), TRPV6 (sc-28763; 1:500), osteoprotegerin (OPG; sc-8468; 1:1,000) and receptor activator of nuclear factor-κB ligand (RANKL; sc-7628; 1:2,000) , CaSR (sc-32181; 1:500), calbindin-D9k (CaBP-9k; sc-367381; 1:500), plasma membrane Ca2+-ATPase1 (PMCA1; sc-16488; 1:500) (all from Santa Cruz Biotechnology, Inc., Santa Cruz, CA, USA), overnight at 4 ̊C.

Techniques: Expressing, Clinical Proteomics, Membrane, Injection

Figure 4. Expression of calcium transport proteins in the duodenum. (A and B) The protein expression of calcium transporters [transient receptor potential vanilloid (TRPV)5, TRPV6, calbindin-D9k (CaBP-9k)] was mea sured in the duodenum. Values are expressed as the means ± SEM, n=8 in each group. *P<0.05 versus vehicle group; #P<0.05 versus dexametha sone (DXM) group. Vehicle, vehicle group (n=8); DXM group, mice were injected intramuscularly with 5 mg/kg body weight DXM three times/week for 12 weeks (n=8); ALN group, mice received alendronate orally at a dose of 0.1 mg/kg/day in combination with DXM for 12 weeks (n=8); pomegranate seed (PS) group, mice received daily drinks of aqueous extract of pomegra nate seed (AE-PS) in combination with DXM for 12 weeks (n=8).

Journal: International journal of molecular medicine

Article Title: Aqueous extract of pomegranate seed attenuates glucocorticoid-induced bone loss and hypercalciuria in mice: A comparative study with alendronate.

doi: 10.3892/ijmm.2016.2622

Figure Lengend Snippet: Figure 4. Expression of calcium transport proteins in the duodenum. (A and B) The protein expression of calcium transporters [transient receptor potential vanilloid (TRPV)5, TRPV6, calbindin-D9k (CaBP-9k)] was mea sured in the duodenum. Values are expressed as the means ± SEM, n=8 in each group. *P<0.05 versus vehicle group; #P<0.05 versus dexametha sone (DXM) group. Vehicle, vehicle group (n=8); DXM group, mice were injected intramuscularly with 5 mg/kg body weight DXM three times/week for 12 weeks (n=8); ALN group, mice received alendronate orally at a dose of 0.1 mg/kg/day in combination with DXM for 12 weeks (n=8); pomegranate seed (PS) group, mice received daily drinks of aqueous extract of pomegra nate seed (AE-PS) in combination with DXM for 12 weeks (n=8).

Article Snippet: After saturation with 5% (w/v) non-fat dry milk in Tris-buffered saline (TBS) and 0.1% (w/v) Tween-20 (TBST), the membranes were incubated with the following antibodies: transient receptor potential vanilloid (TRPV)5 (sc-398345; 1:500), TRPV6 (sc-28763; 1:500), osteoprotegerin (OPG; sc-8468; 1:1,000) and receptor activator of nuclear factor-κB ligand (RANKL; sc-7628; 1:2,000) , CaSR (sc-32181; 1:500), calbindin-D9k (CaBP-9k; sc-367381; 1:500), plasma membrane Ca2+-ATPase1 (PMCA1; sc-16488; 1:500) (all from Santa Cruz Biotechnology, Inc., Santa Cruz, CA, USA), overnight at 4 ̊C.

Techniques: Expressing, Injection

(A) Human organotypic slice model. The human neocortex (middle and inferior temporal gyri; left) was sectioned at 350 μm and cultured on semi-permeable membranes for up to 16 days in vitro (DIV; right). CellREADR AAV vectors were applied to slices on DIV0. Orientation: A, anterior; D, dorsal; P, posterior; V, ventral. (B) Schematic of CellREADR design. In the single-virus design (left), binding of the sensor to the target initiates ADAR-mediated editing of a stop codon to express the downstream effector (mNeon). The binary system (right) uses a CellREADR virus (top right) to drive expression of tTA2 (Tet-advanced transactivator). A reporter virus, conditionally expressing a selected effector molecule (e.g., mNeon, ChIEF, or GCamp7f) under the control of the Tet-responsive element (TRE), is co-applied. (C) CellREADR targeting of diverse neuronal populations. Binary CellREADRs (mNeonGreen) designed against somatostatin ( SST ), Unc-5 netrin receptor B ( UNC5B ), parvalbumin ( PVALB ), forkhead box protein P2 ( FOXP2 ), and calretinin ( CALB2 ) were applied to the neocortex of at least 3 donors. Slices were immunostained for mNeon at DIV7. The CellREADR binary system drove robust expression of mNeon in differing lamina and in cells of various morphologies. Magnified images are indicated by dashed red boxes; throughout, pia and white matter (WM) are illustrated with dotted lines. Scale bars: 200 μm (large image) and 50 μm (magnified image). (D) Histological analysis of binary FOXP2 and CALB2 CellREADR targeting. CellREADR mNeon distribution (green, left) and protein expression of target (purple, middle) are depicted at DIV7. Fluorescence intensity profiles at far left reveal the depth distribution of cells targeted by CellREADR. Dashed boxes indicate areas depicted in (F). Scale bars: 200 μm. (E) Localization of CellREADR-targeted cells. CellREADR mNeon fluorescence intensity profiles measured across the depth of the cortex (0% = pial surface, 100% = WM boundary) averaged from 6 slices (tissues from 3 donors). The solid line shows the mean; the shaded area shows the SEM. FOXP2 -mNeon was relatively uniform throughout cortical layers, while CALB2 -mNeon was more restricted to outer layers. (F) Immunohistochemical characterization of CellREADR specificity. Representative images showing colocalization of CellREADR-mNeon with the corresponding target. Scale bars: 50 μm. (G) Quantification of CellREADR specificities as measured by immunostaining. Each point denotes the specificity of labeling measured from an individual donor’s tissue ( FOXP2 , n = 5 donors; binary CALB2 , n = 7; singular CALB2 , n = 3). Horizontal bars indicate mean specificity values for each CellREADR. Throughout the figures, data are presented as mean ± SEM. (H) Benchmarking CellREADR efficiency with a human interneuron enhancer virus DLX2.0-YFP. CALB2 CellREADR and DLX2.0-YFP viruses (rAAV2-retro) were applied to slices cut sequentially from the same neocortical tissue specimen. Tissue was immunostained at DIV7 against mNeon or YFP. Slice boundaries are indicated by the solid white line, and the WM is demarcated by a dashed white line; boxes mark the inset images on the bottom. Scale bars: 1 mm (top images) and 200 μm (bottom images). (I) Localization of DLX2.0-YFP expression. Representative image illustrating the efficiency and distribution of labeling achieved with a DLX2.0-YFP virus (left), with fluorescence intensity profile (right; averages from 3 donors) illustrating the distribution of labeled cells. Compared to CALB2 CellREADR labeling (D and H), DLX2.0-YFP + cells were less concentrated in the outer cortex. Scale bar: 250 μm. (J) DLX2.0-YFP targeting of the CALB2 population. Quantification of colocalization of DLX2.0-YFP expression and CALB2 measured by immunostaining (images not shown); note the inter-subject variability in the targeting of CALB2 cells ( n = 7 donors). (K) Efficiency of binary and singular CALB2 CellREADRs compared to DLX2.0-YFP enhancer virus. Quantification of cells labeled at DIV7 per unit area (binary CALB2 , n = 6 donors; singular CALB2 , n = 3; DLX2.0-YFP, n = 3). Note that although the CellREADRs were designed to target only CALB2 interneurons rather than multiple interneuron subclasses, they labeled more cells than the DLX2.0 virus (one-way ANOVA with Tukey’s post hoc).

Journal: Cell reports

Article Title: RNA-programmable cell-type monitoring and manipulation in the human cortex with CellREADR

doi: 10.1016/j.celrep.2025.116037

Figure Lengend Snippet: (A) Human organotypic slice model. The human neocortex (middle and inferior temporal gyri; left) was sectioned at 350 μm and cultured on semi-permeable membranes for up to 16 days in vitro (DIV; right). CellREADR AAV vectors were applied to slices on DIV0. Orientation: A, anterior; D, dorsal; P, posterior; V, ventral. (B) Schematic of CellREADR design. In the single-virus design (left), binding of the sensor to the target initiates ADAR-mediated editing of a stop codon to express the downstream effector (mNeon). The binary system (right) uses a CellREADR virus (top right) to drive expression of tTA2 (Tet-advanced transactivator). A reporter virus, conditionally expressing a selected effector molecule (e.g., mNeon, ChIEF, or GCamp7f) under the control of the Tet-responsive element (TRE), is co-applied. (C) CellREADR targeting of diverse neuronal populations. Binary CellREADRs (mNeonGreen) designed against somatostatin ( SST ), Unc-5 netrin receptor B ( UNC5B ), parvalbumin ( PVALB ), forkhead box protein P2 ( FOXP2 ), and calretinin ( CALB2 ) were applied to the neocortex of at least 3 donors. Slices were immunostained for mNeon at DIV7. The CellREADR binary system drove robust expression of mNeon in differing lamina and in cells of various morphologies. Magnified images are indicated by dashed red boxes; throughout, pia and white matter (WM) are illustrated with dotted lines. Scale bars: 200 μm (large image) and 50 μm (magnified image). (D) Histological analysis of binary FOXP2 and CALB2 CellREADR targeting. CellREADR mNeon distribution (green, left) and protein expression of target (purple, middle) are depicted at DIV7. Fluorescence intensity profiles at far left reveal the depth distribution of cells targeted by CellREADR. Dashed boxes indicate areas depicted in (F). Scale bars: 200 μm. (E) Localization of CellREADR-targeted cells. CellREADR mNeon fluorescence intensity profiles measured across the depth of the cortex (0% = pial surface, 100% = WM boundary) averaged from 6 slices (tissues from 3 donors). The solid line shows the mean; the shaded area shows the SEM. FOXP2 -mNeon was relatively uniform throughout cortical layers, while CALB2 -mNeon was more restricted to outer layers. (F) Immunohistochemical characterization of CellREADR specificity. Representative images showing colocalization of CellREADR-mNeon with the corresponding target. Scale bars: 50 μm. (G) Quantification of CellREADR specificities as measured by immunostaining. Each point denotes the specificity of labeling measured from an individual donor’s tissue ( FOXP2 , n = 5 donors; binary CALB2 , n = 7; singular CALB2 , n = 3). Horizontal bars indicate mean specificity values for each CellREADR. Throughout the figures, data are presented as mean ± SEM. (H) Benchmarking CellREADR efficiency with a human interneuron enhancer virus DLX2.0-YFP. CALB2 CellREADR and DLX2.0-YFP viruses (rAAV2-retro) were applied to slices cut sequentially from the same neocortical tissue specimen. Tissue was immunostained at DIV7 against mNeon or YFP. Slice boundaries are indicated by the solid white line, and the WM is demarcated by a dashed white line; boxes mark the inset images on the bottom. Scale bars: 1 mm (top images) and 200 μm (bottom images). (I) Localization of DLX2.0-YFP expression. Representative image illustrating the efficiency and distribution of labeling achieved with a DLX2.0-YFP virus (left), with fluorescence intensity profile (right; averages from 3 donors) illustrating the distribution of labeled cells. Compared to CALB2 CellREADR labeling (D and H), DLX2.0-YFP + cells were less concentrated in the outer cortex. Scale bar: 250 μm. (J) DLX2.0-YFP targeting of the CALB2 population. Quantification of colocalization of DLX2.0-YFP expression and CALB2 measured by immunostaining (images not shown); note the inter-subject variability in the targeting of CALB2 cells ( n = 7 donors). (K) Efficiency of binary and singular CALB2 CellREADRs compared to DLX2.0-YFP enhancer virus. Quantification of cells labeled at DIV7 per unit area (binary CALB2 , n = 6 donors; singular CALB2 , n = 3; DLX2.0-YFP, n = 3). Note that although the CellREADRs were designed to target only CALB2 interneurons rather than multiple interneuron subclasses, they labeled more cells than the DLX2.0 virus (one-way ANOVA with Tukey’s post hoc).

Article Snippet: The following antibodies were used for immunohistochemical labeling of mNeon, mCherry, FoxP2, Calretinin and NeuN: mouse anti-mNeon Ab 1:500, Proteintech 32f6; chicken anti-mCherry Ab 1:500, Origene TA150127; rabbit anti-FoxP2 Ab 1:500, Abcam ab16046; rabbit anti-Calretinin Ab 1:500, Swant CR7697; mouse anti-NeuN Ab 1:500, Cell Signaling #94403S.

Techniques: Cell Culture, In Vitro, Virus, Binding Assay, Expressing, Control, Fluorescence, Immunohistochemical staining, Immunostaining, Labeling

Journal: eLife

Article Title: LKB1 coordinates neurite remodeling to drive synapse layer emergence in the outer retina

doi: 10.7554/eLife.56931

Figure Lengend Snippet:

Article Snippet: Calbindin D-28k , Full-length recombinant human Calbindin D-28K , Horizontal cells; amacrine cells; retinal ganglion cells , Novus biologicals; chicken polyclonal; NBP2-50028; no RRID , 1:2000.

Techniques: RNAscope, Multiplex Assay, Software

(A) Rgs6 expression revealed by immunohistofluorescence (red) together with TH (green) in mDA neurons of SNc but not VTA. Scale bar 410 µm. (B) Co-immunofluorescence analysis of TH (green) and Rgs6 or Pitx3 (red, as indicated) in SNc and VTA of adult mice. Arrowheads point to Pitx3-negative or Rgs6-negative mDA neurons in dorsal SNc. Scale bar 100 µm. (C) Triple immunofluorescence staining for TH (green), Pitx3 (red) and Calb1 (blue) on tissue sections of adult mice indicates that the majority of TH+Pitx3− cells of dSNc (arrowheads) are positive for Calb1, while TH+Pitx3+ cells of vSNc are negative for Calb1, consistent with depiction in A. Scale bar 100 µm.

Journal: PLoS Genetics

Article Title: Rgs6 is Required for Adult Maintenance of Dopaminergic Neurons in the Ventral Substantia Nigra

doi: 10.1371/journal.pgen.1004863

Figure Lengend Snippet: (A) Rgs6 expression revealed by immunohistofluorescence (red) together with TH (green) in mDA neurons of SNc but not VTA. Scale bar 410 µm. (B) Co-immunofluorescence analysis of TH (green) and Rgs6 or Pitx3 (red, as indicated) in SNc and VTA of adult mice. Arrowheads point to Pitx3-negative or Rgs6-negative mDA neurons in dorsal SNc. Scale bar 100 µm. (C) Triple immunofluorescence staining for TH (green), Pitx3 (red) and Calb1 (blue) on tissue sections of adult mice indicates that the majority of TH+Pitx3− cells of dSNc (arrowheads) are positive for Calb1, while TH+Pitx3+ cells of vSNc are negative for Calb1, consistent with depiction in A. Scale bar 100 µm.

Article Snippet: Primary antibodies used were against Pitx3 (rabbit home-made, 1∶400), Rgs6 (rabbit home-made 1∶25), Th (Millipore MAB318, 1∶1000), Th (Millipore AB152, 1∶500), Calb1 (R&D Systems AF3320, 1∶40), Fgf10 (Millipore ABN44, 1∶1000), Slc6a3 (Santa Cruz sc-32258, 1∶250), Drd2 (Santa Cruz sc5303, 1∶100), Aldh1a1 (Abcam ab24343, 1∶400), BDNF (Abcam ab108319, 1∶25), phospho-p27 (Abcam ab32096, 1∶50), phospho-Erk1/2 (Cell Signaling 4376, 1∶25), DJ-1 (Abcam ab18257, 1∶500) Lrrk2 (Epitomics 3514-1, 1∶50), Pink1 (Novus Biologicals BC100-494, 1∶50), LC3B (Cell Signaling 3868, 1∶50), and Vmat2 (Millipore AB1598P, 1∶200).

Techniques: Expressing, Immunohistofluorescence, Immunofluorescence, Staining

Summary of primary antibodies and detection systems used.

Journal: Viruses

Article Title: Pathological Study of Demyelination with Cellular Reactions in the Cerebellum of Dogs Infected with Canine Distemper Virus

doi: 10.3390/v16111719

Figure Lengend Snippet: Summary of primary antibodies and detection systems used.

Article Snippet: Calbindin (orb5912) , Biorbyt , 1:200 , Rabbit/polyclonal , MACH 4 Universal HRP-Polymer.

Techniques: Virus