实验方案(Protocols)

Puchtler Tannic Acid–Azophloxine Method for Muscle Fiber Staining

1 Overview

1.1 Purpose and Scope

This protocol establishes a routine operating procedure for muscle fiber staining using the Puchtler tannic acid–azophloxine method. It is suitable for differentiating muscle fibers and collagen fibers in paraffin-embedded tissue sections. It can be used for morphological studies of smooth muscle, skeletal muscle, and cardiac muscle tissues, and may also assist in displaying myoepithelial cell components in tissues such as breast and skin.

 

1.2 Method Principle

(1) This method is a sequential differential staining system. Through hematoxylin nuclear staining, tannic acid differentiation, phosphomolybdic acid treatment, and azophloxine counterstaining, different tissue components acquire stable color differences.

(2) Lea hematoxylin is mainly used for nuclear staining, turning cell nuclei blue and facilitating subsequent tissue structure recognition.

(3) After tannic acid and phosphomolybdic acid treatment, collagen fibers and muscle fibers show different binding capacities for azophloxine. As a result, muscle fibers and myoepithelial cells appear rose-red, while collagen fibers appear yellow.

 

1.3 Staining Quality Requirements

(1) Muscle fibers and myoepithelial cells should be clearly stained and show a stable rose-red color.

(2) Collagen fibers should be clearly differentiated and appear yellow.

(3) Cell nuclei should be clearly blue-stained, the background should be relatively clean, and the tissue outline should remain intact.

 

2 Materials and Reagents

2.1 Sample Types

(1) Paraffin sections of muscle-related tissues.

(2) Paraffin sections of breast tissue.

(3) Paraffin sections of skin tissue.

(4) Other routine tissue sections requiring differentiation between muscle fibers and collagen fibers.

 

2.2 Main Reagents

(1) Bouin’s fixative, Carnoy’s fixative, or neutral formalin.

(2) 95% ethanol.

(3) Absolute ethanol.

(4) Lea hematoxylin staining solution.

(5) Tannic acid differentiation solution.

(6) Phosphomolybdic acid differentiation solution.

(7) Azophloxine staining solution.

(8) Acid alcohol differentiation solution.

(9) Distilled water.

(10) Xylene or deparaffinization/clearing solution.

(11) Neutral balsam.

 

2.3 Consumables and Equipment

(1) Glass slides and coverslips.

(2) Staining jars.

(3) Forceps and absorbent paper.

(4) Paraffin microtome.

(5) Slide baking equipment.

(6) Microscope.

 

3 Staining Solution and Sample Preparation

3.1 Fixation Requirements

(1) Routine tissues are preferably fixed in Bouin’s fixative for 2–3 h, which generally helps obtain better staining contrast.

(2) Carnoy’s fixative or neutral formalin may also be used, but some fixation systems may result in weaker staining.

(3) Samples in the same batch should use the same fixation system and fixation time whenever possible to reduce staining variation.

 

3.2 Dehydration, Embedding, and Sectioning Requirements

(1) After fixation, samples may be directly transferred into 95% ethanol and then dehydrated and embedded according to routine procedures.

(2) The recommended thickness of paraffin sections is 4 μm.

(3) Section thickness should be kept as consistent as possible to improve staining uniformity and comparability within the same batch.

 

3.3 Deparaffinization Requirements

(1) Paraffin sections should be routinely deparaffinized with xylene or deparaffinization/clearing solution and brought to water.

(2) Incomplete deparaffinization may lead to uneven staining or gray background.

(3) Before entering the staining steps, sections should be fully hydrated.

 

4 Experimental Procedure

4.1 Fixation and Embedding

(1) Fix routine tissue in Bouin’s fixative for 2–3 h.

(2) After fixation, transfer directly into 95% ethanol.

(3) Complete dehydration and embedding according to routine procedures.

 

4.2 Sectioning and Deparaffinization

(1) Prepare paraffin sections with a thickness of 4 μm.

(2) Routinely deparaffinize with xylene or deparaffinization/clearing solution and bring to water.

 

4.3 Nuclear Staining

(1) Immerse the sections in Lea hematoxylin staining solution for 8–10 min.

(2) Remove and rinse under running water for 10 min.

(3) Nuclear staining should be sufficient to produce clearly blue-stained nuclei and should not be too weak.

 

4.4 Tannic Acid Differentiation

(1) Place the sections in tannic acid differentiation solution for 10 min.

(2) Rinse under running water for 1 min after treatment.

(3) This step helps achieve differential coloration between collagen fibers and muscle fibers in the subsequent steps.

 

4.5 Phosphomolybdic Acid Differentiation

(1) Place the sections in phosphomolybdic acid differentiation solution for 10 min.

(2) After treatment, proceed directly to the azophloxine staining step.

(3) The duration of this step should be kept consistent to reduce batch-to-batch variation in color differentiation.

 

4.6 Azophloxine Staining

(1) Immerse the sections in azophloxine staining solution for 10–15 min.

(2) The staining time may be adjusted slightly according to tissue type and staining intensity.

(3) Muscle fibers should be sufficiently stained without overstaining.

 

4.7 Acid Alcohol Differentiation

(1) Place the sections in acid alcohol differentiation solution for 3–5 s.

(2) Differentiation should be controlled until excess red dye is mostly removed from the section and the muscle fibers appear bright red or rose-red.

(3) This is one of the key control points of the method. Insufficient or excessive differentiation should be avoided.

 

4.8 Dehydration, Clearing, and Mounting

(1) After staining, dehydrate repeatedly with absolute ethanol and complete dehydration through a graded ethanol series.

(2) Transfer into xylene or deparaffinization/clearing solution for clearing.

(3) Add neutral balsam, cover with a coverslip, and complete mounting.

(4) Avoid air bubbles after mounting and ensure even distribution of the mounting medium.

 

5 Staining Results

5.1 Muscle Fibers and Myoepithelial Cells

(1) Muscle fibers appear rose-red.

(2) Myoepithelial cells appear rose-red.

 

5.2 Collagen Fibers

(1) Collagen fibers appear yellow.

(2) There should be clear color contrast between collagen fibers and muscle fibers.

 

5.3 Cell Nuclei

(1) Cell nuclei appear blue.

(2) Nuclear staining should clearly show tissue outlines and cellular localization relationships.

 

6 Key Points for Result Interpretation

6.1 Interpretation of Muscle Fibers

(1) Clear and continuous staining of muscle fibers indicates good preservation of muscle tissue structure.

(2) If muscle fiber staining is weak, first review the fixation system, azophloxine staining time, and acid alcohol differentiation degree.

 

6.2 Interpretation of Collagen Fibers

(1) Clear yellow distribution of collagen fibers helps observe the boundary between stromal components and muscle tissue.

(2) If collagen fibers and muscle fibers are not clearly separated, first check the tannic acid differentiation and phosphomolybdic acid differentiation steps.

 

6.3 Interpretation of Myoepithelial Cells

(1) Rose-red staining of myoepithelial cells helps auxiliary identification in tissues such as breast and skin.

(2) Interpretation should be performed together with nuclear position and tissue structural background.

 

7 Common Problems and Cause Analysis

7.1 Weak Muscle Fiber Staining

(1) The fixation system is unsuitable, especially when Bouin’s fixative is not used.

(2) Azophloxine staining time is insufficient.

(3) Acid alcohol differentiation is excessive.

 

7.2 Overall Red Appearance of the Section

(1) Acid alcohol differentiation is insufficient.

(2) Azophloxine staining is too strong.

(3) Excess dye is not effectively removed before dehydration.

 

7.3 Poor Differentiation Between Muscle Fibers and Collagen Fibers

(1) Tannic acid differentiation is insufficient.

(2) Phosphomolybdic acid differentiation time is insufficient or inconsistent.

(3) Differences in tissue fixation and section thickness cause batch-to-batch variation.

 

7.4 Unclear Nuclear Staining

(1) Lea hematoxylin staining time is insufficient.

(2) Running water rinsing is insufficient or excessive.

(3) Incomplete deparaffinization affects nuclear staining uniformity.

 

8 Application Scope

8.1 Muscle Tissue Observation

(1) Observation of smooth muscle-related tissues.

(2) Observation of skeletal muscle and cardiac muscle-related tissues.

 

8.2 Connective Tissue Differentiation

(1) Used to distinguish muscle fibers from collagen fibers.

(2) Suitable for observing muscle layer continuity and stromal collagen distribution.

 

8.3 Myoepithelial-Related Research

(1) Can display myoepithelial cells.

(2) Applicable to morphological studies of breast, skin, and other tissues containing myoepithelial cell components.

 

9 Safety and Operating Guidelines

9.1 Personal Protection

(1) Wear a lab coat and disposable gloves during the experiment.

(2) Handle fixatives, acid alcohol, xylene, and staining solutions in a well-ventilated environment.

 

9.2 Waste Disposal

(1) Waste liquids containing fixatives, ethanol, xylene, and staining residues should be collected separately.

(2) All waste liquids and contaminated consumables should be disposed of according to laboratory chemical waste handling regulations.

 

10 Selection of Related Reagents and Materials

 

Table 1 Reagent Selection for Puchtler Tannic Acid–Azophloxine Muscle Fiber Staining


Cat. No.

Name

Grade and Purity/Specification

Corresponding Step

Use

M1518566

Muscle Fiber Staining Solution (Puchtler Tannic Acid-Azo Phloxine Method)

BioReagent,Biological Stain,for microscopy

Overall staining system

Directly corresponds to the theme of this protocol and can serve as the core product of the complete method

I1507737

Improved Harris Hematoxylin Staining Solution

BioReagent,Suitable for microbiology,for microscopy

Nuclear staining

Can be used as an alternative nuclear staining system to Lea hematoxylin

M774769

Mayer hematoxylin staining solution

BioReagent, Biological Stain, for microscopy

Nuclear staining

Suitable as an alternative routine nuclear staining solution

G774771

Hematoxylin Staining Solution (Gill No.2)

BioReagent, Biological Stain, for microscopy

Nuclear staining

Can be used for nuclear staining of paraffin sections

G774772

Hematoxylin Staining Solution (Gill No.3)

BioReagent, Biological Stain, for microscopy

Nuclear staining

Suitable for systems requiring stronger nuclear staining

T1516054

Tannic Acid Aqueous Solution (5%)

BioReagent,Biological Stain,for microscopy,5% in deionized water

Tannic acid differentiation

Directly corresponds to the tannic acid differentiation step

P1516053

Phosphomolybdic Acid Aqueous Solution (1%)

BioReagent,1% in deionized water

Phosphomolybdic acid differentiation

Directly corresponds to the phosphomolybdic acid differentiation step

P432816

Phosphomolybdic acid hydrate

for microscopy

Phosphomolybdic acid differentiation

Can be used to prepare phosphomolybdic acid differentiation solution

A1518612

Azophloxine Staining Solution

BioReagent,Biological Stain,for microscopy

Azophloxine staining

Directly corresponds to the rose-red staining step for muscle fibers

A105001

Azophloxine

Dye content 90 %

Self-prepared staining solution

Can be used to prepare azophloxine staining solution

A104999

Azophloxine

Dye content 60 %

Self-prepared staining solution

Alternative raw material-grade azophloxine

A1507831

Acidic Ethanol Differentiation Solution (0.3%)

BioReagent,Biological Stain,for microscopy,0.3%

Acid alcohol differentiation

Suitable as a milder option for systems with rapid differentiation

A1507832

Acidic Ethanol Differentiation Solution (0.5%)

BioReagent,Biological Stain,for microscopy,0.5%

Acid alcohol differentiation

Suitable for rapid differentiation for 3–5 s and highly compatible with this workflow

A1507833

Acidic Ethanol Differentiation Solution (0.7%)

BioReagent,Biological Stain,for microscopy,0.7%

Acid alcohol differentiation

Suitable for stronger differentiation when staining is too intense

A774136

Acid Alcohol Differentiation Solution (1%)

BioReagent, Biological Stain, for microscopy, 1%

Acid alcohol differentiation

Suitable for systems requiring stronger differentiation

C1373509

Carnoy's Fluid

BioReagent, ready-to-use

Fixation

Corresponds to the optional fixation system in the protocol

C1373510

Carnoy Fixative Ⅱ

BioReagent, ready-to-use

Fixation

Alternative option for the Carnoy fixation system

F301880

Neutral Formalin Buffered Solution

10%

Fixation

Corresponds to the optional fixation system in the protocol

X112051

Xylene

Premium-Grade Reagents, ≥99%, xylene isomer and ethyl benzene

Deparaffinization/clearing

Corresponds to paraffin section deparaffinization and post-staining clearing

X112054

Xylene

ACS, ≥98.5%, isomers plus ethylbenzene

Deparaffinization/clearing

Suitable for standardized deparaffinization and clearing

X139941

Xylene

Anhydrous Grade, ≥98%, mixture of isomers

Deparaffinization/clearing

Corresponds to routine clearing

E1520400

Environment Friendly Wax Impregnation Dewaxing Transparent Solution

BioReagent,Suitable for Immunohistochemistry(IHC),for microscopy

Deparaffinization/clearing

Can replace xylene for deparaffinization or clearing

D292661

dewaxing liquid

 

Deparaffinization

Can be used for deparaffinizing paraffin sections

N116470

Neutral gum

FMP

Mounting

Corresponds to neutral balsam mounting

 

For more related articles, please see below:

[1] Staining-Based Differentiation of Collagen Fibers, Muscle Fibers, and Fibrin in Tissue Sections

目录: 实验方案(Protocols)

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阿拉丁科学.《Puchtler Tannic Acid–Azophloxine Method for Muscle Fiber Staining》. 阿拉丁知识库,更新于 2026年7月22日。 https://www.aladdin-e.com/zh_cn/faqs/puchtler-tannic-acid–azophloxine-method-for-muscle-fiber-staining-en.html
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