In hydrolyzed vegetable protein (HVP) manufacturing, acid protease derived from
Aspergillus niger is metered into defatted soybean meal, wheat gluten, or maize gluten suspensions that have been pre-acidified to
pH 3.0–4.0 with food-grade hydrochloric acid. The enzyme preparation must conform to the JECFA General Specifications for enzyme preparations, the Food Chemicals Codex general monograph for enzyme preparations, and, for shipments into the European Union, the food enzyme authorisation requirements of
Regulation (EC) No 1332/2008; routine release includes heavy-metal limits (
Pb ≤ 5 mg/kg,
As ≤ 3 mg/kg) and total aerobic plate count
≤ 50,000 CFU/g. Typical charge is
0.10–0.40 kg of liquid acid protease standardized to
50,000–100,000 SAPU/g per
100 kg crude protein, equivalent to
500–1,200 SAPU/kg substrate on a dry-matter basis. Hydrolysis proceeds in
20–50 m³ glass-lined or 316L stainless stirred vessels at
45–55°C for
18–36 h; a pH-stat control loop maintains
±0.1 pH around
3.8–4.2, and batch-to-batch variance in degree of hydrolysis remains
±4% only when the control deadband is not exceeded. Primary-amine development is tracked at
2-h intervals by OPA or TNBS assay, with target degree of hydrolysis of
30–45%; hydrolysis beyond
50% DH correlates on production lines with bitter hydrophobic peptides detectable as sensory quantitative descriptive analysis scores above
4.0. After inactivation at
85–90°C for
15–20 min, the hydrolysate is clarified through a nozzle-bowl centrifuge at
4,500–6,500 rpm, concentrated to
45–55°Bx in falling-film vacuum evaporators, and spray-dried with inlet air at
180–200°C and outlet air at
85–95°C. Terminal product types include HVP powder, clear liquid seasoning bases, soy sauce extenders, bouillon and cube bases, and meat-flavoured snack seasonings; liquid enzyme stock is stored at
0–4°C and re-assayed after
30 days if not used.
Why Is Dough Extensibility Managed with Acid Protease in Cracker and Wafer Lines?
Acid protease addition in low-moisture baked goods is directed at cleaving gluten peptide bonds in the acidified dough environment of
pH 4.0–4.8 that develops after acidulants such as sodium acid pyrophosphate or citric acid dissolve. Dosing levels are set against farinograph method
ISO 5530-1:2013 or
AACC 54-21.01; in industrial practice, standardized fungal acid protease is applied at
10–50 mg/kg flour weight, with the lower bound reserved for soft wheat flour and the upper bound for high-protein (
11–13%) mill streams. On continuously fed six-roll sheeting lines, the enzyme is prehydrated in
4–6°C water and added during the creaming stage before final flour incorporation. Floor time of
30–60 min at
25–27°C permits sufficient substrate access without generating sticky dough; overdosing above
50 mg/kg produces a Farinograph stability reduction exceeding
50% from control and manifests as sheet tearing at gauge rolls set to
2.0–2.5 mm and retreat from cutter edges. A Brabender resistance reduction of
400–500 BU is typical for cracker dough control, verified on-line by sheet relaxation measurements after cutting. Compliance follows processing-aid status under
Regulation (EC) No 1332/2008 and applicable food chemical codex provisions; enzyme activity is inactivated by the bake profile, with core product temperatures reaching
95–105°C within
10–15 min in indirect-fired tunnel ovens. Terminal products include cracker shells, wafer sheets, cream sandwich biscuits, flatbread crisps, and reduced-shrinkage pizza base preforms.Within monogastric feed milling, the target compartment for acid protease is the acid-pepsin stage of the porcine and avian digestive tract, where gastric pH of
2.5–3.5 is maintained for
2–4 h post-prandial. In the European Union, this application falls under
Regulation (EC) No 1831/2003 as a zootechnical additive in the digestibility enhancer functional group; finished premixes must be assayed via the authorisation dossier method, and official feed control procedures follow
Regulation (EC) No 152/2009. Finished feed activity recovery is verified by extraction at
pH 3.0 and spectrophotometric assay for acid protease units. Inclusion rates for a granular acid protease product standardized at
100,000 SAPU/g range from
50–150 g/tonne complete feed, yielding
5,000–15,000 SAPU/kg. In post-pelleting liquid application systems, the product is sprayed onto cooled pellets with a twin-fluid nozzle at
0.8–1.2% addition and
20–30°C pellet surface temperature; activity loss is kept below
5% by avoiding steam-conditioned pelleting above
85°C, where unprotected fungal acid protease can lose
20–40% activity in
30 s residence time. Granular product is hygroscopic and stored below
25°C and
60% relative humidity. Production-scale monitoring tracks activity recovery in mixer batches; variance greater than
±10% typically traces to nozzle clogging or incomplete mixing in ribbon mixers with
8–12 min cycle times. Extruded aquatic feed is processed through twin-screw extruders with L/D ratio
25:1 and die temperature below
110°C. Terminal product types include piglet prestarter crumble, broiler grower pellet, extruded shrimp feed, and dry dog food; published data for acid protease in ruminant feed is limited and not inferred from monogastric dose-response.
| Application segment | Standard or regulation | Analytical or control parameter |
|---|
| HVP/protein hydrolysates | JECFA; FCC; EC 1332/2008 | Heavy metals, total plate count, residual activity |
| Bakery processing aid | EC 1332/2008; ISO 5530-1:2013 | Farinograph stability, dough resistance |
| Feed zootechnical additive | EC 1831/2003; EC 152/2009 | Enzyme activity recovery in finished feed |
| Leather bating | REACH; ISO 4045:2018; ISO 3376:2020 | Float pH, tear strength retention |
| Brewing | EC 1332/2008; ASBC Wort-12; ASBC Beer-31 | Free amino nitrogen, low-angle light scatter haze |
| Dairy/clinical hydrolysates | EU 2016/128; ISO 8968-1 | Total nitrogen, degree of hydrolysis |
Leather Bating Drums, pH 3.8–4.5, and Residual Scud Control
Bating with acid protease follows deliming and operates in wooden or stainless-steel drums with float ratios of
150–200% and drum speeds of
6–8 rpm. The enzyme product is charged at
0.15–0.35% pelts wet weight; bath pH is held at
3.8–4.5 and temperature at
30–35°C for
30–60 min. Process control relies on pelt feel, removal of scud, and air permeability after samming; pH is measured according to
ISO 4045:2018, and mechanical properties after bating are evaluated by
ISO 3376:2020 tensile and
ISO 3377-1:2011 tear methods. Proteolytic action is restricted to noncollagenous proteins in the cementing substance and residual epidermal structures; the collagen triple helix remains intact provided the bating window is not exceeded. Extended dwell above
60 min or pH below
3.5 can cause grain looseness and a reduction in tear strength exceeding
15%, observed on production lines as grain lift of approximately
0.5 mm after toggling. REACH registration for the enzyme preparation must cover import volumes, and the safety data sheet must list residual microbial stabilizers such as sodium chloride or sodium benzoate; combinations with alkaline deliming chemicals before bating are avoided because residual pH above
6.0 suppresses activity. Bated pelts are subsequently pickled with
6–8% sodium chloride and
0.8–1.2% sulfuric acid before chrome tanning; acid protease activity ceases in the pickle due to pH below
2.0. Terminal product types include gloving leather, shoe upper leather, garment leather, and soft bag leather.
When Acid Protease Is Added to Fermented Lager after pH Falls Below 4.5
In high-gravity lager and high-adjunct brewing, mash pH of
5.2–5.6 exceeds the catalytic optimum of fungal acid protease, so activity is deliberately shifted to the fermentation vessel after yeast acidification lowers pH to
4.0–4.3. The enzyme is used primarily to liberate free α-amino nitrogen from barley hordein fractions and to hydrolyze proline-rich haze precursors. Dosing from
3–8 g/hL of a liquid acid protease standardized at
50,000 SAPU/g is injected into cooled wort or early fermentation with a sanitary metering pump at
0.01–0.03 L/hL. Compliance for breweries includes the food enzyme submission under
Regulation (EC) No 1332/2008 where EU-produced beer is placed on market, and analytical verification of free amino nitrogen by
ASBC Wort-12 or EBC
9.11.1; final beer haze is evaluated by
ASBC Beer-31 low-angle light scatter at
90°/
25° or EBC
9.29. The process window is limited: at pH above
4.8, the enzyme retains less than
30% of its maximum activity, and at temperatures below
12°C, catalytic turnover declines by roughly half for each
10°C reduction. Extended contact through diacetyl rest at
18–22°C for
2–5 days allows hydrolysis without post-filtration activity. Terminal product types include lager beer, high-adjunct light beer, and cold-matured lager; production data for non-Saccharomyces mixed fermentations is limited.
Hydrolyzing Whey and Casein Fraction Streams for Clinical and Sports Nutrition
Hydrolysis of whey and casein fraction streams with acid protease targets modified gastrointestinal digestion kinetics and reduced residual intact protein in clinical and sports nutrition powders. The enzyme is applied to demineralised whey protein isolate, WPC80, or micellar casein at
0.2–0.6% crude protein mass. The substrate is reconstituted at
8–12% protein, adjusted to
pH 3.0–4.0 with citric or lactic acid, and heated to
50–55°C for enzyme hold times of
2–8 h depending on target degree of hydrolysis, which is typically
10–25%. Process equipment uses jacketed
5–20 m³ 316L reactors with low-shear top-entering agitators at
40–60 rpm; foam control is managed with food-grade silicone antifoam at
10–50 ppm. Inactivation at
85°C for
15 min stops proteolysis before sequential ultrafiltration with a
10 kDa spiral-wound membrane. Nitrogen and degree of hydrolysis are monitored by
ISO 8968-1 Kjeldahl and OPA assay; clinical nutrition products additionally comply with
Regulation (EU) No 2016/128 for foods for special medical purposes and FDA
21 CFR 117 current good manufacturing practice. Batch records from production-scale spray drying show cyclone outlet temperature above
90°C induces Maillard browning in lactose-containing hydrolysates; therefore exhaust temperature is capped at
85–92°C and liquid concentrate kept below
25% solids before drying. Terminal product types include casein phosphopeptide powders, partially hydrolyzed whey protein isolate for sports nutrition, enteral formula protein modules, and high-DH hydrolysates for flavour applications.
Acid Protease AP-100 is a food-grade endopeptidase preparation assigned to E.C. 3.4.23, produced by submerged fermentation of Aspergillus niger followed by biomass separation, ultrafiltration concentration, and spray drying onto maltodextrin. The powder product is standardized to 50,000 U/g casein protease activity, while the liquid variant AP-200L is standardized to 20,000 U/mL and preserved with sodium benzoate at 0.1 wt%. The enzyme functions as an acid-stable aspartic protease and is intended for low-pH protein hydrolysis in fermentation, cereal processing, and flavour precursor release where neutral and alkaline proteases are inactivated.
| Parameter | AP-100 Powder | AP-200L Liquid | Test Method |
| Activity | ≥ 50,000 U/g | ≥ 20,000 U/mL | GB/T 23527-2009 |
| Appearance | light tan free-flowing powder | amber liquid | visual / turbidimetric |
| pH optimum | 2.5–3.5 | 2.5–3.5 | casein assay pH profile |
| Temperature optimum | 40–50 °C | 40–50 °C | casein assay at pH 3.0 |
| Moisture / dry matter | ≤ 8.0 % | dry matter ≥ 20 % | ISO 760:1978 |
| Lead | ≤ 10 mg/kg | ≤ 5 mg/kg | ISO 17294-2:2016 |
| Arsenic | ≤ 3 mg/kg | ≤ 2 mg/kg | ISO 17294-2:2016 |
| Total viable count | ≤ 10,000 CFU/g | ≤ 1,000 CFU/mL | ISO 4833-1:2013 |
| Enterobacteriaceae | ≤ 10 CFU/g | ≤ 10 CFU/mL | ISO 21528-2:2017 |
| Escherichia coli | absent in 25 g | absent in 25 mL | ISO 16649-2:2001 |
| Salmonella | absent in 25 g | absent in 25 mL | ISO 6579-1:2017 |
| Solubility | soluble at 10 % w/v | miscible | visual, 25 °C |
| Storage | 12 months at ≤ 25 °C and RH ≤ 60 % | 6 months at 4–8 °C | retained activity after storage |
The catalytic mechanism depends on a pair of aspartate residues in the active site. A water molecule is positioned between the two aspartate side chains and attacks the scissile peptide bond after substrate binding. This arrangement is only catalytically competent in the protonated state, which confines practical activity to pH values below 5.0. At pH 6.0 and 40 °C, AP-100 loses 80 % of initial activity within 30 min. Substrate recognition is dominated by hydrophobic interactions; cleavage occurs preferentially on the carboxyl side of phenylalanine, tyrosine, leucine, and glutamic acid residues in casein and cereal prolamins. The molecular weight of the mature enzyme is approximately 38 kDa by SDS-PAGE, and the isoelectric point is 3.5.
How Is Acid Protease Activity Quantified Under Process-Relevant Conditions?
Activity is expressed in acid protease units, where one unit corresponds to the release of 1 μg of tyrosine per minute from casein at 40 °C and pH 3.0, measured by the Folin-Ciocalteu method at 680 nm according to GB/T 23527-2009. The standard substrate is 1 % (w/v) casein dissolved in lactate buffer at pH 3.0. In-process control in high-solids hydrolysates relies on free amino nitrogen by Sörensen formol titration because residual peptides and colour bodies introduce a bias of 5–8 % in spectrophotometric readings. The casein assay repeatability under the same operator and instrument is controlled at ≤ 5 % relative standard deviation; cross-lot verification against the reference standard is performed on every 25 kg drum.
Substrate Specificity and Cleavage Pattern Differ from Neutral and Alkaline Proteases
Neutral protease (E.C. 3.4.24) operates at pH 6.0–7.5, and alkaline protease (E.C. 3.4.21) operates at pH 9.0–11.0. Both classes are inactivated below pH 4.5, whereas Acid Protease AP-100 retains 90 % of initial activity after 60 min at pH 3.0 and 40 °C. Inhibition profiles differentiate the three classes: AP-100 is inhibited by pepstatin A at 1 μM but is unaffected by phenylmethylsulfonyl fluoride at 1 mM; neutral metalloprotease is inhibited by EDTA at 10 mM; alkaline serine protease is inhibited by phenylmethylsulfonyl fluoride at 1 mM. In mixed-enzyme systems, selective inactivation can therefore be designed using class-specific inhibitors.
| Property | Acid Protease AP-100 | Neutral Protease | Alkaline Protease |
| Enzyme class | aspartic protease | metalloprotease | serine protease |
| EC number | E.C. 3.4.23 | E.C. 3.4.24 | E.C. 3.4.21 |
| pH optimum | 2.5–3.5 | 6.0–7.5 | 9.0–11.0 |
| Temperature optimum | 40–50 °C | 45–55 °C | 50–60 °C |
| Primary inhibitor | pepstatin A, 1 μM | EDTA, 10 mM | PMSF, 1 mM |
| Cleavage preference | aromatic and dicarboxylic residues | broad internal peptide bonds | alanine, valine, leucine and other hydrophobic residues |
| Process advantage | active in low-pH, low-spoilage streams | mild hydrolysis of food proteins | high pH required for oxidised protein solubility |
| Inactivation range | ≥ pH 5.5, ≥ 55 °C | ≤ pH 4.0, ≥ 70 °C | ≤ pH 5.0, ≥ 70 °C |
In soy sauce fermentation, AP-100 is dosed at 0.05 wt% of raw material after pH adjustment to 3.0–3.5 and after mash temperature has fallen below 50 °C. The addition accelerates total nitrogen solubilisation, but NaCl at 18–22 % (w/v) in mature moromi reduces activity by 25–35 %. Dosing is therefore completed before salt addition in high-salt processes or in a separate low-salt hydrolysis step using retentate from ultrafiltration. Published data for this specific product in high-salt moromi remains limited.
When Acid Protease Replaces Mineral Acid Hydrolysis in Cereal Protein Processing
Hydrochloric acid hydrolysis of corn gluten is replaced by AP-100 at 0.4 wt% of dry substrate in a 10,000 L jacketed reactor with pH-stat control. The pH is maintained at 3.0–3.5 with 1 M hydrochloric acid, and the jacket holds the vessel at 45 ± 2 °C. Under these conditions, the degree of hydrolysis reaches 14–20 % after 8 h, compared with 70–85 % for mineral acid hydrolysis but without the associated racemisation and 3-chloropropane-1,2-diol formation. The reaction is initially first-order with rate constant k = 0.012 min⁻¹ at 45 °C; after the first 60–90 min, product inhibition reduces the observed rate by 40–50 %. Free amino nitrogen rises from 120 mg/100 g to 450–620 mg/100 g dry basis. Temperature excursions above 55 °C are critical: the half-life in dilute solution is 18–22 min at 55 °C and less than 5 min at 60 °C. Batch-to-batch variation in final DH exceeds ±1.5 percentage points when the vessel temperature deviates by more than ±2 °C for 20 min. The processing window is therefore ≤ ±2 °C at pH 3.2 for consistent product release.
In yeast extract production, AP-100 is added to autolysate at 0.1–0.2 wt% after pH adjustment to 3.2. Acid protease reduces residual high-molecular-weight protein haze after 4 h at 45 °C and increases the proportion of soluble peptides below 5 kDa. Filtration through a plate-and-frame filter with 0.4–0.6 MPa differential pressure shows 15–25 % higher flux due to reduced colloidal load. This effect is specific to low-pH autolysates; neutral protease does not produce equivalent flux improvement at pH 6.5 in the same matrix.
Operational boundaries for AP-100 include exposure to anionic surfactants above 0.5 g/L, which reduces activity by 30–40 % through interfacial denaturation. Copper(II) ion at 1 mM and diazoacetyl-DL-norleucine methyl ester at 10 mM are also inhibitory. The powder should not be stored above RH 60 %; when measured water activity exceeds 0.35, caking and activity loss of 5–10 % per month occur in 25 kg multiwall bags. The enzyme is not appropriate for applications requiring pH greater than 5.0 or temperatures above 50 °C for periods longer than 2 h.
Microbial Acid Protease Versus Porcine Pepsin in Low-pH Hydrolysis
Porcine pepsin is active at pH 1.5–3.0 but loses the majority of activity above pH 4.5. AP-100 extends the practical pH range to 4.5 with 70 % residual activity after 2 h at 40 °C, which permits hydrolysis of substrates buffered by organic acids. AP-100 is of fungal origin and avoids porcine raw material constraints in Kosher, Halal, and vegetarian process streams. The cleavage specificity is similar for aromatic residues, but the fungal enzyme is less dependent on chloride ion activation. In a 500 L pilot vessel at pH 3.5, replacement of porcine pepsin with AP-100 at equivalent casein activity gave comparable degree of hydrolysis after 6 h; however, published data for this specific configuration is limited.