Polyclonal Antibodies

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Cat. No.
BT1670857
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Cat. No.
BT1671294

NAM8 Antibody

This polyclonal antibody is generated by immunizing rabbits with the recombinant NAM8 protein from Saccharomyces cerevisiae (strain ATCC 204508 / S288c), also known as Baker's yeast. After generating a satisfactory antibody titer, rabbit serum is collected and the polyclonal antibodies are extracted. The NAM8 antibody is then purified using protein A/G affinity chromatography. Its effectiveness is validated through ELISA and Western blot applications. This specific NAM8 antibody demonstrates a strong reaction with the NAM8 protein from Saccharomyces cerevisiae (strain ATCC 204508 / S288c).

NAM8 protein is an RNA-binding protein essential for pre-mRNA splicing regulation in Saccharomyces cerevisiae. It plays a critical role in recognizing and binding specific RNA sequences, ensuring accurate mRNA processing. This protein is crucial for the precise removal of introns and the assembly of mature mRNA molecules within yeast cells.

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Cat. No.
BT1671339
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Cat. No.
BT1672070
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Cat. No.
BT1672083
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Cat. No.
BT1672171
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Cat. No.
BT1672825

Phospho-HIST1H1B (T154) Antibody

CUSABIO's CSB-PA010377PA154phHU is a rabbit polyclonal antibody targeting a synthetic peptide derived from human Histone H1.5, encompassing the phosphorylation site T154. This unconjugated IgG antibody specifically recognizes phosphorylated Histone H1.5 of human origin. It exhibits no cross-reactivity with non-phosphorylated Histone H1.5 or other phosphorylated forms of this histone. The antibody's functionality has been validated through ELISA, Western blotting, immunofluorescence, and chromatin immunoprecipitation (ChIP). Histone H1.5 plays a crucial role in various biological processes, including cell differentiation, nucleosome spacing, mRNA splicing, and tumorigenesis.

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Cat. No.
BT1672924
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Cat. No.
BT1673007
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Cat. No.
BT1673230
Definition and Classification

Polyclonal antibodies are a diverse group of antibodies produced by different B cell clones in the body. They recognize and bind to multiple epitopes on a single antigen. Unlike monoclonal antibodies, which are derived from a single B cell clone and recognize a single epitope, polyclonal antibodies are heterogeneous and can target various sites on an antigen. They are classified based on their source (e.g., rabbit, goat, mouse) and the type of antigen they target (e.g., proteins, peptides, small molecules).

Biological Properties

Key Biological Properties: Polyclonal antibodies are characterized by their ability to recognize multiple epitopes, which enhances their binding strength and specificity. They are typically produced in response to an antigenic stimulus and can be found in the serum of immunized animals.

Expression Patterns: Polyclonal antibodies are produced by B cells in response to antigen exposure. The expression patterns depend on the immunization protocol and the animal species used.

Tissue Distribution: These antibodies are primarily found in the blood serum but can also be present in other body fluids and tissues, depending on the immune response and the distribution of the antigen.

Biological Functions

Primary Biological Functions: Polyclonal antibodies play a crucial role in the immune system by recognizing and neutralizing pathogens, such as bacteria and viruses. They facilitate the clearance of antigens through various immune mechanisms, including opsonization, complement activation, and antibody-dependent cellular cytotoxicity (ADCC).

Role in Immune Responses: Polyclonal antibodies are essential for the adaptive immune response. They provide a broad and robust defense against pathogens by targeting multiple epitopes, which reduces the likelihood of immune evasion by the pathogen.

Pathogen Recognition: These antibodies recognize and bind to specific antigens on the surface of pathogens, marking them for destruction by other immune cells.

Modes of Action

Mechanisms with Other Molecules and Cells: Polyclonal antibodies interact with various immune cells, such as macrophages, neutrophils, and natural killer (NK) cells, to mediate immune responses. They can also bind to Fc receptors on immune cells, enhancing phagocytosis and cytotoxicity.

Binding Partners: The primary binding partners of polyclonal antibodies are antigens, which can be proteins, peptides, or other molecules. They can also interact with complement proteins and Fc receptors.

Downstream Signaling Cascades: Upon binding to their target antigens, polyclonal antibodies can trigger downstream signaling cascades that lead to the activation of immune responses. This includes the activation of the complement system, which enhances opsonization and lysis of pathogens.

Regulatory Mechanisms

Expression and Activity Control: The production and activity of polyclonal antibodies are regulated by various factors, including the nature of the antigen, the immunization protocol, and the host’s immune system.

Transcriptional Regulation: The expression of polyclonal antibodies is controlled at the transcriptional level by cytokines and other signaling molecules that influence B cell activation and differentiation.

Post-Translational Modifications: Polyclonal antibodies can undergo post-translational modifications, such as glycosylation, which can affect their stability, binding affinity, and effector functions.

Applications

Biomedical Research: Polyclonal antibodies are widely used in research for detecting and quantifying proteins, studying protein-protein interactions, and investigating cellular pathways.

Diagnostic Tools: They are used in various diagnostic assays, such as ELISA, Western blotting, and immunohistochemistry, to detect the presence of specific antigens in samples.

Therapeutic Strategies: Polyclonal antibodies are used in therapeutic applications, such as antivenoms, immunoglobulin replacement therapy, and passive immunization against infectious diseases.

Role in the Life Cycle

Development: Polyclonal antibodies are produced throughout an individual’s life in response to antigen exposure. They play a critical role in the development of the immune system by providing protection against pathogens.

Aging: As individuals age, the production and diversity of polyclonal antibodies may decline, leading to a reduced ability to respond to new antigens and an increased susceptibility to infections.

Disease: Polyclonal antibodies are involved in various diseases, including autoimmune disorders, where they may target self-antigens, and infectious diseases, where they provide protection against pathogens.

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