Technical articles

Proteolytic Enzyme Networks in Cell Injury: Activation Sequence, Substrate Cleavage, and Experimental Attribution

The proteolytic enzyme network in cell injury involves calpains, caspases, cathepsins, MMP/ADAM family proteases, and the ubiquitin-proteasome system. Different proteolytic enzymes correspond to Ca²⁺ overload, apoptotic execution, lysosomal injury, extracellular matrix remodeling, and disrupted protein homeostasis. Experimental design should focus on establishing an evidence chain based on the detection window, substrate cleavage fragments, inhibitor specificity, and result attribution.

 

Keywords: cell injury; proteolytic enzyme; calpain; caspase; cathepsin; MMP; proteasome; substrate cleavage

 

1 Research Positioning of the Proteolytic Enzyme Network

1.1 Network Composition and Interpretation Framework

(1) Functional division

Calpains primarily mediate Ca²⁺-dependent limited proteolysis and frequently act on cytoskeletal proteins, membrane-associated structures, and adhesion complexes. Caspases are more closely associated with apoptotic execution and substrate cleavage during inflammatory cell death. Once released from lysosomes, cathepsins can amplify mitochondrial injury or inflammasome signaling. MMPs and ADAMs mainly participate in extracellular matrix degradation and membrane protein shedding. The ubiquitin-proteasome system maintains protein homeostasis by degrading ubiquitinated proteins.

(2) Temporal sequence

Proteolytic events show clear stage specificity. Increased Ca²⁺ levels and calpain activation usually occur during the early phase of injury. Caspase cascades often indicate the apoptotic execution phase. Cytosolic release of cathepsins suggests lysosomal membrane permeabilization. Enhanced MMP activity is often associated with tissue barrier disruption, migration and invasion, or remodeling of the inflammatory microenvironment. Single endpoint detection can easily miss critical activation windows.

(3) Spatial localization

Different proteolytic enzymes act in different subcellular regions. Calpains are mainly localized in the cytoplasm, membrane cytoskeleton, and local Ca²⁺ microdomains. Caspases primarily cleave substrates in the cytoplasm and nucleus. Cathepsin analysis should focus on lysosomal localization and cytosolic release. MMPs and ADAMs often act on the extracellular matrix and membrane-proximal regions. Proteasomes are distributed in the cytoplasm and nucleus. Mechanistic attribution should therefore be combined with subcellular fractionation, immunofluorescence, or activity probe results.

 

Table 1 Major Proteolytic Enzyme Systems in Cell Injury

 

Proteolytic Enzyme System

Main Activation Conditions

Typical Action Site

Common Substrates or Readouts

Injury Interpretation

Calpain

Ca²⁺ overload, membrane injury, excitotoxicity

Cytoplasm, membrane cytoskeleton, adhesion structures

αII-spectrin, talin, FAK cleavage

Ca²⁺-dependent limited proteolysis

Caspase

Mitochondrial pathway, death receptor pathway, inflammasome

Cytoplasm, nucleus

Caspase-3, PARP, lamin cleavage

Apoptotic or inflammatory cell death execution phase

Cathepsin

Lysosomal membrane permeabilization, acidic organelle injury

Lysosome, cytoplasm

Cathepsin release, Bid cleavage

Lysosomal injury and amplification of death signaling

MMP/ADAM

Inflammatory cytokines, ECM remodeling, membrane protein shedding

Extracellular matrix, membrane-proximal regions

Gelatinase activity, ECM degradation, receptor shedding

Matrix disruption, barrier injury, migration and invasion

Proteasome

Ubiquitinated protein accumulation, protein quality control stress

Cytoplasm, nucleus

Changes in ubiquitinated proteins, p53, IκBα

Protein homeostasis imbalance and stress regulation

 

2 Key Proteolytic Enzyme Systems and Injury Attribution

2.1 Calpain Pathway

(1) Ca²⁺-dependent activation

Calpains are typical Ca²⁺-dependent cysteine proteases involved in cell injury. Ischemia/hypoxia, excitotoxicity, oxidative stress, mechanical injury, and mitochondrial dysfunction can all induce intracellular Ca²⁺ elevation and promote calpain activation.

(2) Substrate cleavage characteristics

Calpains usually mediate limited proteolysis rather than complete substrate degradation. Characteristic cleavage of cytoskeletal or adhesion-related proteins such as αII-spectrin, talin, FAK, and paxillin often suggests the involvement of Ca²⁺-dependent structural injury. If calpain inhibition reduces both substrate cleavage and cell injury readouts, this further supports a functional role for calpain.

 

2.2 Caspase Pathway

(1) Apoptotic execution

Caspase-3, caspase-6, and caspase-7 are important proteases in the apoptotic execution phase and can cleave substrates such as PARP, lamin, and ICAD. Increased cleaved caspase-3 and cleaved PARP are commonly used to assess apoptotic execution, but they do not independently explain the upstream initiation mechanism.

(2) Cell death mode switching

Caspase-8 connects the death receptor pathway, apoptosis, and necroptosis regulation. If z-VAD-FMK reduces PARP cleavage but does not improve cell death, p-MLKL, GSDMD cleavage, and LDH release should be further examined to determine whether a switch in cell death mode has occurred.

 

2.3 Cathepsin Pathway

(1) Lysosomal membrane permeabilization

Cathepsins B, D, and L are normally localized inside lysosomes. Oxidative stress, lipid peroxidation, drug stimulation, and uptake of crystals or particles can induce lysosomal membrane permeabilization, causing cathepsins to be released into the cytoplasm. Cytosolic cathepsins can promote Bid cleavage, mitochondrial injury, and amplification of the caspase cascade.

(2) Connection with inflammatory signaling

Cathepsin B release is frequently associated with NLRP3 inflammasome activation. If cytosolic cathepsin release, caspase-1 activation, GSDMD cleavage, and IL-1β maturation are observed simultaneously, lysosomal injury-mediated inflammatory cell death should be considered.

 

2.4 MMP/ADAM Pathway

(1) Matrix degradation

MMP-2 and MMP-9 are commonly used to evaluate gelatin-degrading activity. MMP-3 and MMP-13 are associated with tissue remodeling, cartilage destruction, and inflammatory injury. Increased MMP activity more often indicates extracellular matrix remodeling, barrier disruption, or enhanced migration and invasion, and should not be directly equated with increased cell death.

(2) Membrane protein shedding

ADAM family proteases and some MMPs can cleave extracellular domains of membrane proteins, affecting receptor signaling, adhesion molecules, and inflammatory factor release. When studying cell junction disruption, epithelial barrier injury, or receptor shedding, soluble cleavage fragments, reduced membrane protein levels, and responses to MMP/ADAM inhibitors should be evaluated together.

 

2.5 Ubiquitin-Proteasome System

(1) Regulation of protein homeostasis

The proteasome maintains protein quality control by degrading ubiquitinated proteins. Oxidative stress, ER stress, and mitochondrial injury can increase the burden of misfolded proteins. When proteasome function is impaired, accumulation of ubiquitinated proteins can further induce stress responses, inflammatory signaling, and cell death.

(2) Interpretation boundaries of inhibitors

Proteasome inhibitors such as MG132 can be used to study target protein stability, but their effects are broad and may induce ER stress, ROS elevation, and apoptosis. When studying proteasome-related mechanisms, attribution should combine ubiquitinated protein accumulation, proteasome activity, CHX chase assays, and cytotoxicity indicators.

 

Table 2 Experimental Attribution Points for Proteolytic Enzyme Systems

 

Pathway

Key Evidence

Recommended Validation

Common Misinterpretation

Calpain

Ca²⁺ elevation, increased calpain activity, αII-spectrin cleavage

EGTA, calpeptin, substrate cleavage detection

Inferring calpain activation solely from Ca²⁺ elevation

Caspase

Cleaved caspase-3, PARP cleavage, Annexin V positivity

z-VAD-FMK, caspase activity assay

Inferring the entire apoptotic mechanism solely from PARP cleavage

Cathepsin

Lysosomal membrane permeabilization, cytosolic cathepsin release

Fractionation markers, cathepsin inhibitors, activity probes

False positives caused by fractionation contamination

MMP/ADAM

Gelatinase activity, ECM degradation, membrane protein cleavage fragments

MMP inhibitors, migration/invasion assays, cell viability controls

Directly interpreting matrix remodeling as cell death

Proteasome

Ubiquitinated protein accumulation, altered proteasome activity

MG132, CHX chase, target protein half-life

Attributing all MG132 effects to target protein stability

 

3 Detection Strategies for Proteolytic Enzyme Networks

3.1 Enzyme Activity Detection

Enzyme activity assays are suitable for evaluating the current functional state of proteases. Calpains, caspases, cathepsins, MMPs, and proteasomes can all be detected using substrate-based assays or activity probes. Experimental design should consider lysis buffer composition, pH, chelators, detergents, sample autofluorescence, and substrate specificity. Enzyme activity readouts are suitable for screening and time-course analysis, but they cannot replace substrate cleavage detection and functional phenotyping.

 

3.2 Substrate Cleavage Detection

Substrate cleavage is more directly related to functional proteolysis than total protein expression. Calpain activation can be evaluated by cleavage of αII-spectrin, talin, or FAK. Caspase activity can be assessed by PARP, lamin, and caspase self-cleavage. Cathepsin involvement can be evaluated by Bid cleavage and cytosolic release. MMP activity can be examined using gelatin substrates or ECM degradation. Proteasome activity can be inferred from ubiquitinated protein accumulation and target protein stability. Substrate cleavage fragments should be attributed based on molecular weight, cleavage site, and reversal by inhibitors.

 

3.3 Inhibitors and Genetic Interventions

Inhibitors can be used to verify the extent of protease involvement, but their specificity is often limited. Calpain inhibitors may affect other cysteine proteases. z-VAD-FMK may alter cell death mode. MG132 can induce broad cellular stress. Key conclusions should be supported by inhibitors of different structural classes, siRNA/CRISPR intervention, overexpression of endogenous inhibitors, or rescue experiments.

 

Table 3 Experimental Design Framework for Proteolytic Enzyme Networks

 

Experimental Question

Recommended Detection Combination

Key Controls

Result Interpretation

Is Ca²⁺-dependent injury present?

Ca²⁺ imaging, calpain activity, αII-spectrin cleavage

EGTA, calpain inhibitor

Determine whether calpain is an early injury node

Has apoptosis entered the execution phase?

Cleaved caspase-3, PARP cleavage, Annexin V

z-VAD-FMK, negative control

Determine the degree of caspase cascade involvement

Is lysosomal injury involved?

LysoTracker, cathepsin release, cathepsin activity

Cathepsin inhibitor, fractionation markers

Determine the connection between LMP and death signaling

Is matrix degradation enhanced?

MMP activity, ECM substrate changes, migration/invasion assays

MMP inhibitor, cell viability control

Distinguish matrix remodeling from cytotoxicity

Is protein homeostasis disrupted?

Ubiquitinated proteins, proteasome activity, ER stress indicators

MG132, CHX chase

Determine mechanisms of protein degradation or accumulation

Does a drug act on the proteolytic network?

Enzyme activity, cleavage fragments, cell death, inhibitor combination

Vehicle control, multi-pathway inhibitors

Distinguish direct inhibition from secondary protection

 

4 Application Logic in Common Injury Models

4.1 Ischemia/Hypoxia and Reperfusion Injury

In ischemia-reperfusion models, Ca²⁺ overload, increased ROS, and decreased mitochondrial membrane potential often occur together. Calpain activation can serve as an early indicator of structural injury, caspase cascades reflect apoptotic execution, and cathepsin release suggests lysosomal injury involvement. Experiments should sequentially detect Ca²⁺ changes, calpain activity, substrate cleavage, mitochondrial indicators, and cell death.

 

4.2 Neuronal Injury

In excitotoxicity and neurodegenerative injury, calpain often contributes to axonal cytoskeletal cleavage, synaptic protein alterations, and membrane structural damage. If calpain inhibition reduces αII-spectrin cleavage and improves axonal integrity or neuronal survival, this supports its functional role in early injury. If caspase-3 activation also occurs, further analysis is needed to determine whether calpain lies upstream of caspase activation.

 

4.3 Lysosomal Injury and Inflammatory Models

Particles, crystals, lipid peroxidation, and certain drug stimuli can induce lysosomal membrane permeabilization. In these models, cytosolic cathepsin release, NLRP3 activation, caspase-1 activation, GSDMD cleavage, and IL-1β maturation should be detected together. If cathepsin inhibitors reduce inflammasome indicators, this supports the involvement of lysosomal injury in inflammatory cell death.

 

4.4 Tumor Migration and Tissue Remodeling Models

In models of migration and invasion, fibrosis, inflammatory tissue destruction, and barrier injury, the MMP/ADAM pathway has greater interpretive value. MMP activity, ECM degradation, membrane protein cleavage fragments, cell migration ability, and cell viability should be analyzed separately to avoid misinterpreting reduced migration caused by cytotoxicity as specific inhibition of the MMP pathway.

 

Table 4 Proteolytic Enzyme Combinations in Different Injury Models

 

Model Type

Priority Pathways

Recommended Indicators

Interpretation Focus

Ischemia-reperfusion

Calpain, caspase, cathepsin

Ca²⁺, calpain activity, PARP cleavage, cathepsin release

Determine the sequence of early structural injury and death execution

Excitotoxicity

Calpain, caspase

αII-spectrin cleavage, caspase-3, neuronal survival

Distinguish Ca²⁺-dependent cleavage from apoptotic execution

Lysosomal injury

Cathepsin, caspase-1

Cathepsin B release, GSDMD, IL-1β

Determine the connection between LMP and inflammasome activation

Tumor migration and invasion

MMP/ADAM, calpain

MMP-2/9 activity, talin/FAK cleavage, migration assays

Distinguish matrix remodeling from cytotoxicity

Protein homeostasis stress

Proteasome, caspase

Ubiquitinated proteins, ER stress, cleaved caspase-3

Determine the relationship among protein accumulation, stress, and death

 

5 Abnormal Results and Attribution Control

5.1 Increased Enzyme Activity Without Obvious Substrate Cleavage

This pattern is often caused by a mismatched sampling window, unsuitable substrate selection, insufficient specificity of the enzyme activity substrate, or instability of cleavage fragments. A time-course experiment, a more representative substrate cleavage antibody, and inhibitor reversal experiments are recommended.

 

5.2 Enhanced Substrate Cleavage Without Inhibitor Reversal

The substrate may be cleaved by multiple proteases. If calpain inhibitors fail to reverse αII-spectrin cleavage, caspase inhibitor controls should be added. If cathepsin inhibitors fail to reverse Bid cleavage, the mitochondrial pathway and caspase cascade should be examined. A negative result with a single inhibitor does not directly exclude involvement of the proteolytic network.

 

5.3 Inhibitor Improves Cell Viability Without Altering Enzyme Activity

The inhibitor may act on non-target pathways, or the detection window may not coincide with the peak activity of the target enzyme. Sampling time should be reset, and substrate cleavage fragments, upstream stimuli, and cellular phenotypes should be examined. If an inhibitor only improves cell viability without enzyme activity or substrate-level evidence, the protective effect should not be directly attributed to the target protease.

 

Table 5 Common Abnormal Results and Optimization Strategies in Proteolytic Enzyme Network Studies

 

Abnormal Finding

Possible Cause

Optimization Strategy

Enzyme activity signal increases but substrate cleavage is weak

Mismatched time window or unsuitable substrate selection

Set a time course and replace substrate cleavage indicators

Substrate cleavage increases but inhibitor is ineffective

Shared cleavage by multiple proteases or insufficient inhibitor dose

Add inhibitors for other pathways and perform dose gradients

z-VAD-FMK reduces PARP cleavage but does not reduce death

Cell death mode switching or compensation by non-apoptotic death

Detect p-MLKL, GSDMD, and LDH release

Abnormally increased cytosolic cathepsin signal

Fractionation contamination or overly harsh lysosomal disruption during processing

Add fractionation markers and validate by immunofluorescence

MMP activity increases but cell number decreases

Cytotoxicity interferes with migration or secretion readouts

Detect cell viability and LDH release simultaneously

Multiple pathways are activated after MG132 treatment

Proteasome inhibition induces broad cellular stress

Reduce dose, shorten treatment duration, and combine with CHX chase

 

6 Selection of Related Products and Materials

6.1 Calpain Pathway-Related Products

 

Product Category

Cat. No.

Product/Material Name

Grade & Purity

Application Positioning

Enzyme source

C1441522

Calpain-1 (pig)

 

Used for in vitro calpain-1 enzyme activity systems, substrate cleavage reactions, and inhibitor screening model establishment

Enzyme source

np001116

Calpain-1 from Human Erythrocyte

Native,EnzymoPure™,≥95%(SDS-PAGE),≥1000 U/mg protein; Protein concentration: See COA

Suitable as a human-derived calpain-1 positive enzyme source for Ca²⁺-dependent proteolysis systems and inhibitor effect validation

Enzyme source

np001115

Calpain-1, Porcine Erythrocytes

 

Used for porcine calpain-1 enzyme source systems, in vitro substrate cleavage, and optimization of calpain reaction conditions

Enzyme source

C755293

Calpain-1, Porcine Erythrocytes

Calpain-1, Porcine Erythrocytes, is a native calpain-1. A heterodimeric cysteine proteinase with low Ca2+ requirement (EC₅₀ = 2 µM).

Suitable for low-Ca²⁺ requirement calpain-1 activity reactions, substrate cleavage, and inhibitor effect comparison

Substrate

C1453940

Calpain-1 substrate, fluorogenic

 

Used for calpain-1 fluorogenic substrate activity assays

Substrate

C1443233

Calpain substrate

 

Used for calpain substrate cleavage and enzyme activity readout establishment

Inhibitor

A275929

ALLM

≥95%

Used for calpain inhibition validation and attribution of Ca²⁺-dependent injury

Inhibitor

A274819

ALLN

≥95%

Used for validating calpain involvement and inhibitor controls

Inhibitor

A420582

ALLN

10mM in DMSO

Suitable as a ready-to-use calpain inhibitor stock for cell treatment or pharmacological screening

Inhibitor

C695638

Calpain inhibitor II

≥95%

Used for calpain inhibition experiments and can be combined with substrate cleavage detection

Inhibitor

P276048

PD 151746

≥95%

Suitable for calpain-specific intervention and pharmacological screening experiments

Inhibitor

L275900

Z-LLY-FMK

≥95%

Used for inhibitory validation of calpain-mediated substrate cleavage

Inhibitor

C420784

Calpeptin

Moligand™, 10mM in DMSO

Suitable for cell-permeable calpain inhibition experiments

Inhibitor

C274691

Calpeptin

Moligand™, ≥95%

Used for calpain inhibition validation in cellular models and intervention in Ca²⁺-dependent injury

Inhibitor

N276203

NYC-488

≥94%

Used for calpain inhibitor comparison and pharmacological screening

Inhibitor

C336446

Calpain Inhibitor VI

≥95%

Used for calpain inhibition validation and can be paired with calpain activity readouts and substrate cleavage detection

Inhibitor

C341237

Calpain Inhibitor XII

≥90%

Used for calpain pathway inhibition and cross-validation with different inhibitors

Inhibitor

C1436419

Calpain Inhibitor-2

 

Used for inhibition experiments of calpain-mediated proteolysis

Inhibitor

C1419148

Calpain inhibitor V

 

Used for combined validation of calpain inhibitors and intervention in injury models

Inhibitor

C1497109

Calpain-2-IN-1

Moligand™, 10 mM in DMSO

Used for calpain-2-targeted inhibition and cell treatment experiments

Inhibitor

C649440

Calpain-2-IN-1

≥98%

Used for calpain-2 inhibitor validation and CAPN2-related mechanistic studies

Inhibitor

M611796

mercaptoacrylate inhibitor of calpain 1

Moligand™

Used for calpain-1 inhibition and isoform-related pharmacological validation

Antibody

Ab092523

Recombinant Calpain 1 Antibody

ExactAb™, Validated, Recombinant, 2.0 mg/mL

Used for calpain-1 protein expression detection, WB validation, and analysis of calpain-1-related injury pathways

Antibody

Ab327205

Recombinant Calpain 1 Antibody

KD Validation

Used for calpain-1 expression detection and CAPN1 signal validation in knockdown models

Antibody

Ab092535

Calpain 2 Antibody

Carrier Free, ExactAb™, Validated, High Performance, See COA

Used for calpain-2 protein expression detection, CAPN2 pathway validation in injury models, and isoform distinction

Antibody

Ab327201

Recombinant Calpain 2 Antibody

KD Validation

Used for calpain-2 expression detection and CAPN2 signal validation in knockdown models

Antibody

Ab092526

Calpain 10 Antibody

See COA

Used for calpain 10 protein level detection and calpain isoform analysis in specific cellular models

ELISA kit

EJ1512394

Rat Calpain 1 (Calpain 1) ELISA Kit

BioReagent

Used for detecting calpain 1 levels in rat cell, tissue, or body fluid samples

ELISA kit

EJ1512395

Rat Calpain 2 (Calpain 2) ELISA Kit

BioReagent

Used for detecting calpain 2 levels in rat samples and evaluating CAPN2 changes in injury models

ELISA kit

EJ1515072

Human Calpain 2 (CAPN2) ELISA Kit

BioReagent

Used for detecting CAPN2 levels in human samples and suitable for cell injury and clinically related sample analysis

 

6.2 Caspase Pathway-Related Products

 

Product Category

Cat. No.

Product/Material Name

Grade & Purity

Application Positioning

Activity assay kit

C1372489

Caspase 3/7 Activity Assay Kit

BioReagent

Used for detecting caspase-3/7 executioner apoptotic activity

Live-cell assay kit

L1520214

Live Cell Caspase-3/7 Activity and Annexin V Dual Apoptosis Detection Kit (LumiDye™ 488 Caspase-3/7, LumiDye™ 594-Annexin V, Hoechst 33342)

BioReagent,sterile,for microscopy,Biological Stain,for fluorescence analysis

Used for simultaneous live-cell detection of caspase-3/7 activity and early apoptotic membrane externalization

Live-cell assay kit

L1520218

Live Cell Caspase-3/7 Activity and Annexin V Dual Apoptosis Detection Kit (LumiDye™ 488 Caspase-3/7, LumiDye™ 647-Annexin V, EthD Gold, Hoechst 33342)

BioReagent,sterile,for microscopy,Biological Stain,for fluorescence analysis

Suitable for combined analysis of live-cell apoptotic progression and membrane integrity

Inhibitor

Z421947

Z-VAD(OH)-FMK (Caspase Inhibitor VI)

10mM in DMSO

Used for broad-spectrum caspase inhibition and validation of cell death mode switching

Inhibitor

Q275003

QVD-OPh

≥95%, mixture of isomers

Used for intervention in caspase-dependent cell death

Inhibitor

M274709

Caspase-3/7 Inhibitor

≥97%

Used for validating caspase-3/7-specific inhibition

Antibody

Ab213595

Caspase 3 Mouse mAb

Carrier Free,ExactAb™,Azide Free,Validated,High Performance,PBS Only,≥95%(SDS-PAGE),1.0 mg/mL

Used for caspase-3 protein expression and apoptotic pathway detection

Antibody

Ab326059

Cleaved Caspase 8 Antibody

KD Validation

Used for validating caspase-8 activation and the death receptor pathway

Antibody

Ab326939

Recombinant cleaved Caspase-9 Antibody

KD Validation

Used for detecting caspase-9 activation in the mitochondrial apoptotic pathway

 

6.3 Cathepsin and Lysosomal Injury-Related Products

 

Product Category

Cat. No.

Product/Material Name

Grade & Purity

Application Positioning

Antibody

Ab093155

Cathepsin B Mouse mAb

Carrier Free, ExactAb™, Azide Free, Validated, High Performance, See COA

Used for cathepsin B expression, localization, and lysosomal injury-related detection

Antibody

Ab215111

Cathepsin D Mouse mAb

Carrier Free,ExactAb™,Azide Free,Validated,High Performance,PBS Only,≥95%(SDS-PAGE),1.0 mg/mL

Used for cathepsin D expression and lysosomal pathway validation

Antibody

Ab093200

Cathepsin L/MEP Antibody

ExactAb™, Validated, 1.0 mg/mL

Used for detecting cathepsin L-related proteolytic pathways

Substrate

C1441538

Cathepsin D/E Substrate, Fluorogenic

 

Used for cathepsin D/E fluorogenic substrate activity assays

Substrate

C659428

Cathepsin D and E FRET Substrate acetate

≥98%

Used for cathepsin D/E FRET substrate-based activity assays

Inhibitor

E109034

E-64

Moligand™, ≥99%, protease inhibitor

Used for cathepsin/cysteine protease background control

Inhibitor

E123225

E-64d

Moligand™,≥98%,protease inhibitor

Suitable for cellular cathepsin B/L inhibition experiments

Inhibitor

C408095

Cathepsin Inhibitor 1

10mM in DMSO

Used for validating cathepsin pathway inhibition

Inhibitor

C1494949

Cathepsin L-IN-2

Moligand™, 10 mM in DMSO

Used for validating cathepsin L-related injury mechanisms

ELISA kit

EJ1514552

Human Cathepsin B (CTSB) ELISA Kit

BioReagent

Used for detecting CTSB levels in human samples

ELISA kit

EJ1514554

Human Cathepsin D (Cath-D) ELISA Kit

BioReagent

Used for detecting cathepsin D levels in human samples

 

6.4 MMP/ADAM Pathway-Related Products

 

Product Category

Cat. No.

Product/Material Name

Grade & Purity

Application Positioning

Substrate

M1442064

MMP-1/MMP-9 Substrate, Fluorogenic

 

Used for MMP substrate cleavage and gelatinase-related activity detection

Inhibitor

M276513

MMP-2/MMP-9 Inhibitor I

Moligand™,≥99%

Used for validating MMP-2/9-dependent matrix degradation

Inhibitor

M338143

MMP-2/MMP-9 Inhibitor II

≥95%

Used for MMP-2/9 activity inhibition and migration/invasion mechanism analysis

Inhibitor

M1494998

MMP-2/MMP-9-IN-1

Moligand™, 10 mM in DMSO

Suitable for MMP-2/9 inhibition experiments in cell models

Inhibitor

M412536

MMP-9-IN-1

≥98%

Used for MMP-9-related inflammatory injury, ECM degradation, and migration assays

Inhibitor

M274731

MMP-9 inhibitor

≥95%

Used for MMP-9 pathway intervention and matrix degradation attribution

Antibody

Ab115657

MMP2 Mouse mAb

Carrier Free, ExactAb™, Validated, High Performance, See COA

Used for detecting MMP-2 protein expression and secretion levels

Antibody

Ab115721

MMP9 antibody

ExactAb™, Validated, Recombinant, See COA

Used for validating MMP-9 expression and inflammation/matrix remodeling

ELISA kit

EJ1514021

Human Matrix MetalloProteinase 2 (MMP-2) ELISA Kit

BioReagent

Used for detecting MMP-2 levels in human supernatants or samples

ELISA kit

EJ1514028

Human Matrix MetalloProteinase 9 (MMP-9) ELISA Kit

BioReagent

Used for detecting MMP-9 secretion levels and evaluating tissue injury

ELISA kit

EJ1514938

Human A Disintegrin And Metalloprotease 10 (ADAM10) ELISA Kit

BioReagent

Used for analyzing ADAM10-related membrane protein shedding pathways

ELISA kit

EJ1514939

Human A Disintegrin And Metalloprotease 17 (ADAM17) ELISA Kit

BioReagent

Used for studies of ADAM17-mediated receptor shedding and inflammatory factor release

Inhibitor

G169107

GI254023X

Moligand™, ≥98%(HPLC)

Used for validating ADAM10-dependent membrane protein shedding

Substrate

A1442055

ADAM-17 Substrate

 

Used for ADAM17 substrate cleavage activity detection

 

6.5 Proteasome and Sample Processing-Related Products

 

Product Category

Cat. No.

Product/Material Name

Grade & Purity

Application Positioning

Proteasome inhibitor

M126521

MG-132

Moligand™, ≥98%

Used for ubiquitinated protein accumulation, target protein stability, and proteasome inhibition experiments

Proteasome inhibitor

R166528

(R)-MG132

≥98%

Used for 20S proteasome inhibition and protein homeostasis stress models

Proteasome inhibitor

M275487

MG-115

Moligand™, ≥95%

Used for proteasome inhibition controls and target protein stability analysis

Proteasome inhibitor

D127401

CEP-18770 (Delanzomib)

≥97%

Used for studies of proteasome inhibition and cellular stress/apoptosis

Proteasome inhibitor

O129260

Oprozomib (ONX 0912)

Moligand™, ≥98%

Used for inhibition studies of 20S proteasome β5/LMP7-related activity

Proteasome detection

EJ1514821

Human Proteasome Subunit Alpha Type 5 (PSMα5) ELISA Kit

BioReagent

Used for detecting proteasome subunit expression levels

Proteasome detection

EJ1514824

Human Proteasome Activator Subunit 3 (PSME3/PA28γ) ELISA Kit

BioReagent

Used for detecting proteasome regulatory factors

Sample processing

P301902

Protease Inhibitor Cocktail

100×,EDTA free

Suitable for protecting protein samples when metal ion chelation interference should be avoided

Sample processing

P665818

Protease Inhibitor Cocktail

BioReagent, EDTA free, 100X

Suitable for protecting non-target proteins in cell/tissue lysate samples

Sample processing

P775091

Protease Inhibitor Cocktail (Suitable for mammalian cell and tissue extract, EDTA Free, 100X)

BioReagent, Suitable for mammalian cell and tissue extract, 100X, EDTA free

Suitable for processing mammalian cell and tissue samples

Sample processing

P752090

Protease and Phosphatase Inhibitor Cocktail (100×, EDTA-Free)

BioReagent, for western blot, for protein analysis, 100×

Suitable for WB samples in which both proteolysis and phosphorylation signals are evaluated

Sample processing

C1491689

Column Tissue&Cell Protein Extraction Kit (with Protease Inhibitor Cocktail)

BioReagent, for western blot, for protein analysis

Used for total protein extraction from cells or tissues and WB sample preparation

 

7 Frequently Asked Questions

7.1 How should the detection window for proteolytic enzymes be set in injury models?

The detection window should be established according to the kinetics of the injury model rather than selecting a fixed endpoint. Ca²⁺ imaging and calpain activity are more suitable for early time points. Caspase-3/PARP cleavage is suitable for the apoptotic execution phase. Cytosolic cathepsin release should be detected in parallel with lysosomal membrane permeabilization. MMP activity and ECM degradation usually require a longer observation period. A small-scale time-course experiment is recommended before determining sampling points for formal experiments.

 

7.2 How can αII-spectrin cleavage fragments be distinguished as calpain- or caspase-derived?

αII-spectrin can be cleaved by both calpain and caspase. Attribution should combine the molecular weight of cleavage fragments, timing of appearance, and inhibitor reversal results. If a calpain inhibitor markedly reduces a specific cleavage fragment while a caspase inhibitor has a weaker effect, this supports a calpain-derived fragment. If cleaved caspase-3 and PARP cleavage are also increased, caspase involvement should be considered.

 

7.3 How should subcellular fractionation contamination be controlled when detecting cytosolic cathepsin release?

Cytosolic cathepsin detection should include cytosolic, lysosomal, and mitochondrial compartment markers to confirm fractionation purity. If obvious lysosomal marker contamination appears in the cytosolic fraction, conclusions about cathepsin release should be interpreted cautiously. Cross-validation with immunofluorescence localization, lysosomal membrane permeabilization indicators, and cathepsin activity probes is recommended.

 

7.4 How can the dominant pathway be determined when multiple proteolytic enzymes are activated simultaneously?

The dominant pathway should be determined by integrating temporal sequence, substrate cleavage profile, magnitude of inhibitor reversal, and improvement in cellular phenotype. If calpain activation occurs earliest and its inhibition reduces downstream caspase cleavage and cell injury, calpain may be positioned upstream. If caspase inhibitors only reduce PARP cleavage but do not improve membrane rupture, caspases are not the only execution mechanism.

 

7.5 How can a mechanistic evidence chain be established when inhibitor specificity is insufficient?

A multilayer evidence strategy should be used. First, enzyme activity assays should confirm changes in the target protease activity. Second, characteristic substrate cleavage fragments should be detected. Third, inhibitors with different structural classes or genetic interventions should be used for cross-validation. Fourth, phenotypes such as cell death, migration, inflammation, or barrier function should be assessed for synchronized improvement. Fifth, nonspecific effects of inhibitors on other proteases and cell viability should be excluded. Mechanistic attribution is more reliable when multiple layers of evidence point in the same direction.

 

Studies of proteolytic enzymes in cell injury should avoid attribution based on a single indicator. Integrated analysis of enzyme activity, substrate cleavage, inhibitor response, subcellular localization, and cellular functional readouts is required to more accurately distinguish early injury nodes, execution-phase cleavage events, and secondary changes in protein homeostasis.

 

For more related articles, please see below:

[1] Construction and Evaluation Strategy of a Gentamicin-Induced Cell Injury Model

Categories: Technical articles

Da — when not otherwise indicated, molecular weight units are daltons.   Mw — weight-average molecular weight.   Mn — number-average molecular weight.

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Cite this article

Aladdin Scientific. "Proteolytic Enzyme Networks in Cell Injury: Activation Sequence, Substrate Cleavage, and Experimental Attribution" Aladdin Knowledge Base, updated 21 jul 2026. https://www.aladdinsci.com/us_es/faqs/proteolytic-enzyme-networks-in-cell-injury-activation-sequence-substrate-cleavage-and-experimental-attribution-en.html
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