Types, Selection Principles, and Experimental Applications of Loading Control Antibodies
Types, Selection Principles, and Experimental Applications of Loading Control Antibodies
Loading control antibodies are used to detect stable reference proteins and provide internal references for target protein quantification, sample-to-sample comparison, evaluation of subcellular fractions, and multiplex detection. Their applicability depends on reference protein stability, sample type, subcellular localization, the mechanism of experimental intervention, and the detection system.
Keywords: loading control antibodies; Loading Control; reference proteins; protein normalization; subcellular fractionation; multiplex detection
1 Functions and Experimental Positioning of Loading Control Antibodies
1.1 Loading Control Antibodies and Reference Proteins
Loading control antibodies are used to recognize reference proteins in experimental systems, while the normalization or internal reference function is actually performed by the detected reference protein itself. GAPDH, β-Actin, and Tubulin are mainly used as whole-cell or cytoplasmic reference proteins, whereas Histone H3, Lamin, COX IV, Hsp60, and ATP1A1 are respectively suitable for specific subcellular fractions such as the nucleus, mitochondria, or plasma membrane. Only when a reference protein remains relatively stable in the defined sample and experimental conditions can its antibody signal serve as an effective internal reference.
1.2 Major Functions of Loading Control Antibodies
(1) Relative Quantification of Target Proteins
In Western blot and other quantitative immunoassays, stable reference proteins can be used to correct technical differences arising from sample loading, protein extraction efficiency, and the detection workflow, thereby improving comparability of target protein quantification among different samples.
(2) Evaluation of Subcellular Fractions
Nuclear-cytoplasmic fractionation, mitochondrial extraction, and membrane-protein enrichment experiments require reference proteins with defined localization to evaluate enrichment of the target fraction, fraction content among different samples, and possible cross-contamination.
(3) Reference for Imaging and Multichannel Detection
In immunofluorescence, immunocytochemistry, and applicable multiparameter detection systems, stable reference proteins can be used to establish an internal reference channel to assist comparison of target signals among different cells, different subcellular regions, or different treatment conditions.
(4) Experimental Quality Control
Abnormal changes in reference proteins may result either from direct effects of the experimental treatment on their expression or localization or from deviations in sample amount, fractionation efficiency, or detection conditions. Therefore, loading control signals can serve as important indicators for experimental quality assessment.
1.3 Loading Control Antibodies and Other Experimental Controls
Loading control antibodies, positive controls, negative controls, isotype controls, and fractionation markers perform different experimental functions. Loading controls are mainly used to establish an internal comparison baseline; positive controls are used to verify the ability of the detection system to recognize the target protein; negative or isotype controls are used to evaluate nonspecific background; fractionation markers are used to assess the purity of subcellular fractions. Some proteins can serve as both loading controls and fractionation markers, but their evaluation level should be defined according to the specific experimental purpose.
Table 1 Functional Positioning of Different Experimental Controls
Type | Major Function | Typical Application | Common Examples |
Loading control protein | Establish an internal comparison baseline | Relative quantification and sample normalization | GAPDH, β-Actin, Tubulin |
Subcellular reference | Evaluate specific fractions | Nuclear, mitochondrial, and membrane-protein analysis | Histone H3, COX IV, ATP1A1 |
Positive control | Verify detection validity | Confirmation of antibody specificity and detection performance | Samples known to express the target protein |
Negative/isotype control | Evaluate nonspecific background | Immunoassays such as IF and FC | Isotype IgG, unstained samples |
Total protein/sample amount reference | Independent normalization | Protein quantification and complex-sample comparison | Total protein staining, cell number |
1.4 Basic Conditions for Valid Loading Controls
(1) Reference Protein Stability
Candidate reference proteins should not show systematic changes related to the experimental treatment among control groups, treatment groups, or key dose and time conditions.
(2) Relative Independence From the Research Mechanism
The reference protein should not directly participate in the core biological process affected by the experimental intervention. GAPDH should be used cautiously in glycolysis studies; Actin, Vinculin, Cofilin, and Profilin should be used cautiously in cytoskeletal and mechanotransduction studies; and Tubulin stability should be reassessed in microtubule intervention experiments.
(3) Matching Subcellular Localization
Whole-cell, cytoplasmic, nuclear, mitochondrial, and plasma-membrane samples have different protein compositions. Reference proteins should be selected according to the localization of the fraction being analyzed.
(4) Reliable Detection Signal
The antibody should have good specificity and reproducibility, and the detection signal should remain within an effective dynamic range. Fluorescence detection additionally requires control of background signal, channel crosstalk, photobleaching, and signal saturation.
2 Common Loading Control Proteins and Their Applicable Ranges
2.1 Whole-Cell and Cytoplasmic Loading Controls
(1) GAPDH
GAPDH has a typical molecular weight of approximately 36 kDa and is a common whole-cell and cytoplasmic reference protein. Hypoxia, glucose restriction, enhanced glycolysis, and metabolic reprogramming may alter its expression, so its stability should be validated before formal quantification in metabolism-related studies.
(2) β-Actin
β-Actin has a typical molecular weight of approximately 42 kDa and is an important component of the Actin cytoskeleton. EMT, cell migration, adhesion, mechanotransduction, and Actin remodeling may all affect its expression or state, so β-Actin should not be preset as a constant loading control in related studies.
(3) α-Tubulin and β-Tubulin
α-Tubulin and β-Tubulin form microtubule heterodimers and have typical molecular weights of approximately 50–55 kDa. They can be used in some whole-cell and cytoplasmic samples. Microtubule stabilizers, microtubule depolymerizing agents, mitotic arrest, and cell-cycle synchronization may all alter the state of the microtubule system, so their value as references should be reassessed in related studies.
(4) Vinculin
Vinculin has a typical molecular weight of approximately 116 kDa and can serve as a high-molecular-weight candidate reference protein. It participates in focal adhesion formation, FAK signaling, and mechanotransduction, so it should be used cautiously in adhesion- and cell-mechanics-related studies.
2.2 Cyclophilin, Cofilin, and Profilin
(1) Cyclophilin A/B
Cyclophilin A is mainly distributed in the cytoplasm, whereas Cyclophilin B is closely associated with the endoplasmic reticulum and secretory pathway. They can serve as candidate reference proteins other than GAPDH, Actin, and Tubulin. Their stability should be revalidated in studies of inflammation, oxidative stress, endoplasmic reticulum stress, and Cyclophilin-related mechanisms.
(2) Cofilin and Profilin
Cofilin and Profilin both participate in regulation of Actin dynamics and can serve as candidate reference proteins in experimental systems that do not directly interfere with the cytoskeleton. In studies of cell migration, invasion, adhesion, and cytoskeletal remodeling, their own changes have clear biological significance and therefore they should not be used as fixed loading controls.
2.3 Nuclear Protein Loading Controls
(1) Histone H3
Histone H3 is a core histone of the nucleosome and can be used for nuclear protein and chromatin-related samples. Total Histone H3 and modification-specific signals such as H3K9me2 should be strictly distinguished. Modification-specific antibodies reflect specific epigenetic modification states and cannot replace total Histone H3 as a nuclear protein reference.
(2) Lamin A/C and Lamin B1
Lamin A/C and Lamin B1 are structural proteins of the nuclear lamina and can be used in nuclear protein and nuclear-envelope-related experiments. Lamin B1 may decrease during cellular senescence, while Lamin A/C may also be affected by cell differentiation, nuclear mechanics, and nuclear-lamina remodeling.
(3) TBP and HDAC1
TBP is a component of the basal transcription machinery, while HDAC1 participates in chromatin deacetylation. They can serve as candidate reference proteins in some nuclear protein experiments. Their relevance to the experimental mechanism should be carefully evaluated in transcriptional regulation, HDAC inhibition, and epigenetic studies.
(4) YY1
YY1 is a nuclear transcriptional regulatory protein and can be used for specific nuclear protein detection or as a conditional reference. Because YY1 broadly participates in transcriptional regulation, its stability is highly dependent on experimental conditions and it should not be used as a universal nuclear loading control.
2.4 Mitochondrial Loading Controls
(1) COX IV
COX IV is located in the inner mitochondrial membrane and is a commonly used mitochondrial reference protein. Mitophagy, mitochondrial biogenesis, and respiratory-chain remodeling may alter its level, in which case COX IV may simultaneously reflect changes in mitochondrial mass and should not be used as a constant reference.
(2) Hsp60
Hsp60 is mainly located in the mitochondrial matrix and can be used for mitochondrial fractions and related protein studies. Mitochondrial stress and changes in protein homeostasis may affect its expression, so its stability should be validated in the specific experimental model.
(3) Grp75
Grp75 is a mitochondrial chaperone and can serve with COX IV and Hsp60 as mitochondrial reference candidates with different functional backgrounds. Its expression stability should be evaluated in studies of mitochondrial stress, protein folding, and mitochondrial dysfunction.
2.5 Plasma Membrane and Membrane-Structure Loading Controls
(1) ATP1A1
ATP1A1 encodes the Na⁺/K⁺-ATPase α1 subunit and is mainly located in the plasma membrane. It can be used for membrane-protein extraction and evaluation of membrane fractions. Studies of receptor internalization, membrane trafficking, and ion homeostasis may directly affect its expression or localization.
(2) Caveolin-1
Caveolin-1 is an important structural protein of Caveolae and can serve as a candidate reference in some membrane-protein and membrane-structure studies. Its stability should be reassessed in research involving Caveolae remodeling, membrane mechanical stress, and lipid metabolism.
2.6 Other Conditional Reference Proteins
Hsp70 can serve as a candidate reference protein in some experiments, but heat shock, oxidative stress, and proteotoxic stress can markedly induce its expression. Albumin and Transferrin show clear dependence on tissue, cell type, and secretion background and are more suitable for specific tissue, body-fluid, or transport-related studies. The reference value of these proteins depends more strongly on the specific sample and experimental conditions than that of traditional whole-cell loading controls.
Table 2 Experimental Positioning of Common Reference Proteins
Reference Protein | Major Localization | Major Application | Research Conditions Requiring Caution |
GAPDH | Cytoplasm | Whole-cell and cytoplasmic loading control | Hypoxia, glycolysis, metabolic reprogramming |
β-Actin | Cytoskeleton | Whole-cell loading control | EMT, migration, mechanotransduction |
α/β-Tubulin | Microtubules | Whole-cell and cytoplasmic loading control | Microtubule drugs, cell cycle |
Vinculin | Focal adhesions/cytoskeleton | High-molecular-weight candidate loading control | Adhesion, FAK, mechanical signaling |
Cyclophilin A/B | Cytoplasm/endoplasmic-reticulum-related | Conditional reference | Inflammation, ER stress |
Cofilin/Profilin | Actin regulation | Conditional reference | Migration, cytoskeletal remodeling |
Histone H3 | Chromatin | Nuclear protein loading control | Histone and chromatin research |
Lamin A/C, B1 | Nuclear lamina | Nuclear protein reference | Senescence, nuclear mechanics, differentiation |
TBP, HDAC1 | Nucleus | Nuclear protein reference | Transcription and epigenetic research |
COX IV | Inner mitochondrial membrane | Mitochondrial reference | Mitophagy |
Hsp60, Grp75 | Mitochondria | Mitochondrial reference | Mitochondrial stress |
ATP1A1 | Plasma membrane | Membrane-protein reference | Membrane trafficking, ion homeostasis |
Caveolin-1 | Caveolae | Membrane-structure reference | Membrane remodeling |
Hsp70 | Cytoplasm, etc. | Conditional reference | Heat shock, stress |
3 Major Experimental Applications of Loading Control Antibodies
3.1 Western Blot and Protein Quantification
Western blot usually normalizes the target protein signal to the signal of a stable reference protein to reduce technical deviations arising from protein quantification, loading, transfer, and imaging. In addition to reference protein stability, molecular-weight overlap and signal linearity should also be considered. For target proteins at approximately 35–40 kDa, interference from GAPDH should be considered; for target proteins at approximately 40–45 kDa, β-Actin should be considered; and for the approximately 50–55 kDa region, Tubulin band overlap should be considered. Highly abundant loading controls should also be prevented from reaching signal saturation.
3.2 Capillary Immunodetection and Automated Protein Analysis
Automated immunoassays such as capillary Western also require establishment of reference protein or total protein normalization systems. The biological stability principles for candidate reference proteins are the same as those for traditional Western blot, but antibody working range, sample loading amount, and detection linearity need to be independently validated according to the specific platform.
3.3 Subcellular Fractionation
(1) Nuclear-Cytoplasmic Fractionation
Histone H3, Lamin A/C, Lamin B1, or TBP can be selected for nuclear fractions, while GAPDH, Tubulin, or Cyclophilin A can be selected for cytoplasmic fractions. Reference proteins can be used for relative quantification and can also assist in evaluating the purity of nuclear-cytoplasmic separation.
(2) Mitochondrial Fractionation
COX IV, Hsp60, and Grp75 can be used to evaluate mitochondrial fractions. In Mitophagy or mitochondrial biogenesis experiments, these proteins may change together with total mitochondrial mass, so mitochondrial fraction references should be distinguished from mitochondrial-mass indicators.
(3) Membrane Protein Fractionation
ATP1A1 and Caveolin-1 can be used for plasma-membrane-related samples. If the experiment directly involves receptor internalization, Caveolae remodeling, or membrane trafficking, other membrane references or independent normalization methods should be used.
3.4 Immunofluorescence and Immunocytochemistry
Internal references in immunofluorescence and immunocytochemistry are mainly used to assist comparison of target signals according to cell number, cellular structure, subcellular region, or treatment condition, and their quantitative logic differs from that of Western blot. Stable reference proteins can serve as independent detection channels, but fixation, permeabilization, imaging parameters, and ROI selection should be kept consistent, and it should be confirmed that the reference protein itself is not markedly affected by the experimental treatment.
3.5 Multichannel Fluorescence Imaging
Directly labeled antibodies including AF405, AF488, AF555, AF594, AF647, AF700, AF750, FITC, TRITC, and Cy-series labels can be used for multichannel detection. When reference antibodies and target antibodies are detected simultaneously, channel combinations should be designed according to excitation/emission spectra, target protein abundance, reference signal intensity, and the detection platform, while controlling spectral crosstalk, signal saturation, and photobleaching.
3.6 Flow Cytometry and Multiparameter Detection
Flow cytometry and other multiparameter detection methods have independent normalization and quality-control systems. Traditional housekeeping protein normalization principles cannot directly replace positive, negative, FMO, or isotype controls. A reference protein can serve as an auxiliary internal reference only when it is stably expressed in the target cell population, relatively independent of the experimental mechanism, and the corresponding antibody has been validated for the intended application.
3.7 Immunohistological Detection
Tissue samples show marked heterogeneity in cellular composition and spatial distribution, and GAPDH, Actin, or Tubulin may not remain constant across different tissue regions. For relative signal comparison, internal references should be determined according to tissue type, target cell population, pathological state, and the spatial expression characteristics of the reference protein to avoid interference from changes in cellular composition.
3.8 Multiplex Immunodetection
HRP-, Biotin-, and directly fluorescent-conjugated antibodies can reduce the risk of secondary-antibody cross-reactivity and support multi-target detection within the same sample. Different labeling formats mainly affect the detection workflow and channel compatibility, while whether a reference protein can function as a loading control still depends on its biological stability.
3.9 Control Boundaries in Other Immunoassays
Co-IP, ChIP, ELISA, and protein arrays each have their own normalization and quality-control systems, and traditional Loading Controls are not universal references for all experimental steps. Co-IP is usually evaluated using Input, IgG, and IP products; ChIP is commonly normalized to Input, while IgG is used as a nonspecific-background or negative control; ELISA mainly depends on standard curves and quality-control samples. Loading control antibodies serve as internal references only when the experimental design explicitly requires a stable reference protein.
4 Selection Principles for Loading Control Antibodies
4.1 Screening According to Sample Type
For whole-cell and cytoplasmic samples, GAPDH, β-Actin, Tubulin, Vinculin, and Cyclophilin can be preferentially considered. For nuclear samples, Histone H3, Lamin, TBP, and HDAC1 can be screened. For mitochondrial samples, COX IV, Hsp60, and Grp75 can be considered. For membrane-protein samples, ATP1A1 and Caveolin-1 can be considered. Sample localization is the fundamental condition for selecting candidate loading controls.
4.2 Exclusion According to Experimental Mechanism
Table 3 Principles for Excluding Candidate Loading Controls Under Different Research Conditions
Experimental Condition | Reference Proteins Requiring Caution | Major Reason |
Hypoxia, glycolysis | GAPDH | Glycolytic program changes |
EMT, migration | β-Actin, Vinculin, Cofilin, Profilin | Cytoskeletal and adhesion remodeling |
Microtubule drugs | α/β-Tubulin, βIII Tubulin | Microtubule system is directly affected |
Cellular senescence | Lamin B1 | May decrease during senescence |
Epigenetic intervention | HDAC1, specific Histone modifications | Direct involvement in the research mechanism |
Mitophagy | COX IV, Hsp60, Grp75 | Mitochondrial mass changes |
Heat shock | Hsp70 | Stress-induced expression |
Caveolae research | Caveolin-1 | Membrane structure changes directly |
ER stress | Cyclophilin B | Endoplasmic reticulum state changes |
Cell-cycle research | PCNA, Cdk4 | Cell-cycle dependent |
Neural differentiation | βIII Tubulin | Differentiation marker |
Smooth muscle/myofibroblast differentiation | ACTA2 | Phenotypic marker |
4.3 Selecting Antibodies According to Detection Method
Unconjugated antibodies can be flexibly combined with different secondary-antibody systems; HRP-conjugated antibodies can reduce secondary-antibody steps; Biotin labeling can be combined with Streptavidin systems; directly fluorescent-labeled antibodies are suitable for multichannel detection. Whether a specific product is suitable for WB, IF, ICC, FC, or other detection methods should be determined according to the actual application validation of the product.
4.4 Stability Validation
Before formal experiments, 2–3 candidate reference proteins with different functional backgrounds should preferably be selected and prescreened in control groups, major treatment groups, and key dose or time points. If a reference protein changes systematically with experimental treatment, it should be excluded from the loading control system. Complex experiments can additionally use total protein, cell number, or other independent normalization methods for cross-validation.
5 Conditional References and Phenotype-Related Proteins
5.1 PCNA and Cdk4
PCNA participates in DNA replication, while Cdk4 participates in cell-cycle regulation. Both can be used for proliferation- and cell-cycle-related detection, but in experiments involving cell-cycle synchronization, proliferation, senescence, or antitumor treatment, they themselves represent important experimental readouts and are therefore unsuitable as constant loading controls in the corresponding models.
5.2 βIII Tubulin
βIII Tubulin shows clear dependence on cell type and differentiation status and is a commonly used marker protein in neuronal cells and neural differentiation research. In studies of neural differentiation, neural injury, and neuronal phenotypes, it should be treated as an experimental indicator rather than a universal reference protein.
5.3 ACTA2 and Actin Isoforms
ACTA2 is closely associated with smooth muscle and myofibroblast phenotypes, and Actin isoforms such as ACTC1 and ACTG2 also show tissue- and cell-type dependence. Related antibodies are suitable for phenotype and Actin-family detection but should not be used as fixed loading controls in fibrosis, smooth muscle differentiation, or myofibroblast formation experiments.
5.4 γ-Tubulin and Centrin 2
γ-Tubulin and Centrin 2 are closely associated with centrosomes and microtubule-organizing centers and are mainly used for centrosome, microtubule nucleation, and mitosis-related detection. Their major value lies in structural and localization evaluation rather than routine whole-cell normalization.
5.5 Albumin and Transferrin
Albumin and Transferrin show clear dependence on tissue, cell type, and secretion background. Their antibodies are suitable for specific tissue, body-fluid, secretion, and transport-related experiments and are not suitable as universal loading controls across different cells and tissues.
6 Labeling Formats of Loading Control Antibodies
6.1 Unconjugated Antibodies
Unconjugated antibodies can be flexibly combined according to the primary antibody host and secondary-antibody system and are suitable for Western blot, immunofluorescence, immunocytochemistry, and other validated immunoassays. In multiplex experiments, cross-reactivity between different primary antibody hosts and secondary antibodies should be avoided.
6.2 HRP-Conjugated Antibodies
Direct HRP conjugation can reduce secondary-antibody incubation steps and is suitable for corresponding chemiluminescent or chromogenic systems. β-Actin, GAPDH, Cofilin, Hsp60, Vinculin, COX IV, Profilin 1, and β-Tubulin all have corresponding directly labeled products.
6.3 Biotin-Conjugated Antibodies
Biotin-conjugated antibodies can be detected using Streptavidin systems and are suitable for signal amplification or specific multiplex detection strategies. GAPDH, β-Actin, Cyclophilin B, Lamin A/C, Hsp60, Cofilin, Profilin 1, Caveolin-1, and Tubulin can all form different detection combinations.
6.4 Fluorescent-Conjugated Antibodies
Directly labeled antibodies using AF405, AF488, AF555, AF594, AF647, AF700, AF750, FITC, TRITC, and Cy-series fluorophores can be adapted to different fluorescence channels. The labeling format should be selected according to the detection platform, spectral compatibility, and target protein abundance. Direct fluorescent labeling itself cannot be used as the criterion for determining whether a reference protein is suitable as a loading control.
7 Loading Control Abnormalities and Result Interpretation
7.1 Changes in Reference Proteins Between Groups
When a single reference protein changes systematically with experimental treatment while other independent references or total protein remain stable, the protein should be considered regulated by the treatment and should no longer be used for normalization. When multiple reference proteins change simultaneously, broad biological changes should be distinguished from technical deviations caused by sample amount, protein extraction, or the detection workflow.
7.2 Abnormalities in Subcellular References
Abnormal nuclear, mitochondrial, or membrane reference signals may result from fractionation contamination or differences in fraction recovery and may also reflect experimental changes in the corresponding organelle or structure. Subcellular localization experiments should be interpreted comprehensively using multiple localization references together with changes in the target protein.
7.3 Abnormalities in Fluorescence References
Photobleaching, exposure saturation, elevated background, channel crosstalk, and differences in labeling efficiency can all affect fluorescence reference signals. Before quantification, both the reference and target channels should be confirmed to remain within stable and comparable detection ranges.
7.4 Inconsistent Results Between Different Loading Controls
When different candidate reference proteins produce inconsistent normalization results, their stability, detection linearity, and relevance to the experimental mechanism should be reassessed. If necessary, a third reference protein or an independent normalization method should be added for validation.
8 Loading Control Antibodies and Related Reference Products
Table 4 Selected Loading Control and Related Reference Antibodies
Cat. No. | Description | Grade & Purity | Reference Protein | Application Positioning |
Recombinant beta Actin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | β-Actin | Whole-cell/cytoplasmic loading control | |
Recombinant GAPDH Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.5 mg/mL | GAPDH | Whole-cell/cytoplasmic loading control | |
Recombinant GAPDH Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | GAPDH | Whole-cell/cytoplasmic loading control | |
Recombinant beta Tubulin Antibody | Recombinant, ExactAb™, Validated, 0.2 mg/mL | β-Tubulin | Whole-cell/cytoplasmic loading control | |
Recombinant beta Tubulin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | β-Tubulin | Whole-cell/cytoplasmic loading control | |
Recombinant Alpha Tubulin Antibody | Recombinant, ExactAb™, Validated, 0.25 mg/mL | α-Tubulin | Whole-cell/cytoplasmic loading control | |
Recombinant alpha Tubulin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | α-Tubulin | Whole-cell/cytoplasmic loading control | |
Recombinant Vinculin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | Vinculin | High-molecular-weight candidate loading control for whole-cell samples | |
Recombinant Histone H3 Antibody | Recombinant, ExactAb™, Validated, PBS Only, See COA | Histone H3 | Nuclear protein loading control | |
Recombinant Histone H3 Antibody | Recombinant, ExactAb™, Validated, High Performance, 1.0 mg/mL | Histone H3 | Nuclear protein loading control | |
Recombinant Lamin B1 Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.3 mg/mL | Lamin B1 | Nuclear protein loading control | |
Recombinant Lamin B1 Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | Lamin B1 | Nuclear protein loading control | |
Lamin B1 Mouse mAb | Carrier Free, ExactAb™, Azide Free, Validated, High Performance, See COA | Lamin B1 | Nuclear protein loading control | |
Recombinant TBP Antibody | Recombinant, ExactAb™, Validated, See COA | TBP | Nuclear protein reference | |
TBP Mouse mAb | Carrier Free, ExactAb™, Azide Free, Validated, See COA | TBP | Nuclear protein reference | |
Anti-HDAC1 antibody | Recombinant, ExactAb™, Validated, High Performance, 0.125 mg/mL | HDAC1 | Nuclear protein reference | |
HDAC1 Mouse mAb | Carrier Free, ExactAb™, Azide Free, Validated, High Performance, See COA | HDAC1 | Nuclear protein reference | |
Recombinant YY1 Antibody | Recombinant, ExactAb™, Validated, See COA | YY1 | Nuclear transcription-related detection | |
Recombinant COX IV Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.5 mg/mL | COX IV | Mitochondrial reference | |
Recombinant COX IV Antibody | Recombinant, ExactAb™, KD Validation, Validated, See COA | COX IV | Mitochondrial reference | |
COX IV Mouse mAb | ExactAb™, Validated, 2.0 mg/mL | COX IV | Mitochondrial reference | |
COX4I2 Antibody | Carrier Free, ExactAb™, Validated, 1.0 mg/mL | COX4I2 | Mitochondrial respiratory-chain-related detection | |
Recombinant ATP1A1 Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.5 mg/mL | ATP1A1 | Plasma membrane reference | |
Recombinant Sodium Potassium ATPase/ATP1A1 Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | ATP1A1 | Plasma membrane reference | |
Recombinant PCNA Antibody | Recombinant, ExactAb™, Validated, 0.5 mg/mL | PCNA | Proliferation/cell-cycle marker | |
Recombinant PCNA Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | PCNA | Proliferation/cell-cycle marker | |
Recombinant beta III Tubulin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | βIII Tubulin | Neural differentiation marker | |
Recombinant beta III Tubulin Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.088 mg/mL | βIII Tubulin | Neural differentiation marker | |
beta III Tubulin Mouse mAb | Carrier Free, ExactAb™, Validated, High Performance, See COA | βIII Tubulin | Neural differentiation marker | |
Recombinant ACTA2 Antibody | Recombinant, ExactAb™, Validated, High Performance, 0.05 mg/mL | ACTA2 | Smooth muscle/myofibroblast phenotype marker | |
Recombinant ACTC1/ACTA2/ACTG2 Antibody | Recombinant, ExactAb™, KD Validation, Validated, See COA | ACTC1/ACTA2/ACTG2 | Actin-family-related detection | |
Recombinant beta I Tubulin Antibody | Recombinant, ExactAb™, Validated, High Performance, See COA | βI Tubulin | Microtubule-related reference | |
Recombinant Transferrin Antibody | Recombinant, ExactAb™, Validated, See COA | Transferrin | Secretion/transport-related detection |
More loading control antibodies can be found in the “Loading Control Antibodies” category on the Aladdin website.
The selection of loading control antibodies should be based on reference protein stability, sample type, subcellular localization, and the detection system in order to establish a reliable internal experimental reference.
For more related articles, please see below:
[1] Principles of Western Blot Internal Reference Antibody Selection
