Wine fermentation is a delicate biological process where yeast converts grape sugars into alcohol and carbon dioxide. But this process doesn’t always go smoothly. From premature yeast shutdown to bacterial invasions that turn your wine into vinegar, spoilage during fermentation is a real and common challenge. Understanding these spoilage mechanisms – what causes them, how to detect them, and how to prevent them – is essential for anyone involved in winemaking, whether at an industrial or home scale.

Table of Contents

What is wine fermentation spoilage?

Wine spoilage refers to any unwanted change in the wine’s flavour, aroma, colour, or stability caused by undesirable microorganisms, chemical reactions, or environmental conditions. These faults can occur at any stage – during primary fermentation, malolactic fermentation, aging, or even after bottling. The result is reduced wine quality, off-putting sensory characteristics, and in severe cases, a product that’s completely undrinkable.

As noted by researchers at Penn State Extension, wines host complex microbial communities including yeasts, lactic acid bacteria (LAB), and acetic acid bacteria (AAB), all of which can shift from beneficial to harmful depending on conditions. Even Saccharomyces cerevisiae, the standard wine fermentation yeast, can produce foul-smelling sulfur compounds when stressed.

Stuck fermentation: when yeast stops working

A stuck fermentation occurs when yeast becomes dormant or dies before it has finished converting all the sugar in the must into alcohol. This is different from an “arrested fermentation,” where a winemaker intentionally halts the process – for instance, when producing fortified wines like Port. A stuck fermentation is unplanned, unwanted, and often difficult to fix.

According to Wikipedia’s entry on stuck fermentation, once fermentation stalls, dying yeast cells release a chemical compound that inhibits the growth of new yeast, making restarts extremely challenging.

Common causes of stuck fermentation

There are several factors that can cause a fermentation to stall. Here are the most significant ones:

Temperature extremes: Yeast is highly sensitive to temperature. If the must gets too hot – approaching 40ยฐC (104ยฐF) – yeast cells begin to die. Conversely, if the temperature drops too low (below about 13ยฐC or 55ยฐF), yeast activity slows dramatically and may stop altogether. As explained by WineMaker Magazine, temperature swings during fermentation are among the most frequent causes of stalled fermentations, and the effect worsens as alcohol levels rise.

Nitrogen deficiency: Yeast needs nitrogen to grow and reproduce. When the must lacks sufficient yeast-assimilable nitrogen (YAN), fermentation slows and can stop entirely. Grape varieties like Chardonnay and Riesling are naturally prone to low nitrogen-to-sugar ratios, making them higher-risk candidates for stuck fermentations. Winemakers commonly add diammonium phosphate (DAP) to supplement nitrogen levels.

Excessive sugar (high Brix): Overripe grapes carry very high sugar levels, which translate into elevated alcohol during fermentation. Most yeast strains cannot survive or reproduce in environments above 16-18% alcohol by volume (ABV). If the initial sugar level is too high, the yeast may die off before the wine reaches dryness.

Microbial competition: Wild yeasts and bacteria naturally present on grapes can compete with the inoculated yeast strain for nutrients and resources. This competition can weaken the primary fermentation yeast and slow down or halt the process.

Lack of oxygen and nutrients: In the absence of oxygen, yeast relies on lipids found in grape solids. Heavily clarified white musts – stripped of grape solids – can starve the yeast. Red wines, fermented on their skins, face a lower risk because the skins provide both solids and some oxygen exposure.

Restarting a stuck fermentation

Prevention is always better than cure, because restarting a stuck fermentation is notoriously difficult. However, a few approaches can help. Moving the fermenter to a warmer location (around 20-21ยฐC or 68-70ยฐF) often helps if cold temperatures were the culprit. Adding a yeast energiser that provides extra nitrogen and micronutrients can revive sluggish yeast. In more stubborn cases, winemakers pitch a fresh, highly alcohol-tolerant yeast strain such as Lalvin EC-1118, often by first building a vigorous yeast starter and gradually acclimating it to the stuck wine before combining the two.

As specialists at Westgarth Wines explain, for red wines, aerating the must may help reactivate dormant yeast. Another effective technique is to progressively blend the stuck wine into a vessel where a healthy, active fermentation is already underway.

Acetic acid bacteria: the vinegar makers

Acetic acid bacteria (AAB), primarily from the genera Acetobacter and Gluconobacter, are among the most common spoilage organisms in wine. These bacteria oxidise ethanol to produce acetic acid – the same compound that gives vinegar its sharp taste and smell. Even small amounts of AAB activity can push a wine’s volatile acidity (VA) above acceptable thresholds, ruining its sensory profile.

A research review published by PubMed notes that AAB are well adapted to sugar- and ethanol-rich environments and are naturally found on grapes as part of the microbial flora. Their presence becomes problematic when oxygen is available – these are strictly aerobic organisms, meaning they require oxygen to grow and metabolise.

When do acetic acid bacteria strike?

AAB can cause problems at several stages. On damaged or rotten grapes, their populations explode, reaching up to 106 colony-forming units (CFU) per berry. During healthy, fast-starting fermentations, AAB populations decline rapidly because the anaerobic environment (rich in carbon dioxide) suppresses their growth. However, during stuck or sluggish fermentations, where COโ‚‚ production is insufficient to exclude oxygen, AAB can proliferate and produce acetic acid.

Post-fermentation, AAB remain a threat during aging and storage. Wines stored in small oak barrels absorb small amounts of oxygen through the wood, which can reactivate dormant AAB metabolism. According to ScienceDirect, red wines matured in oak cooperage tend to have higher volatile acidity than white wines for this very reason.

Volatile acidity and ethyl acetate

The primary spoilage product from AAB is acetic acid, measured as volatile acidity (VA). But AAB contamination often brings another compound: ethyl acetate, formed when acetic acid reacts with ethanol. While acetic acid itself may not be easily detected at low levels (commercial vinegar has 30-90 g/L of acetic acid, compared to the legal limit in wine of about 1.2-1.4 g/L), ethyl acetate can be detected at much lower concentrations, producing a distinctive nail-polish-remover smell.

Additionally, AAB can produce acetaldehyde – a compound that at levels above 100-125 mg/L gives wine an oxidised, sherry-like character with green-apple and metallic notes.

Oxidation: the silent spoiler

Oxidation is one of the most pervasive chemical spoilage pathways in wine. It occurs when wine is excessively exposed to oxygen, triggering chemical reactions that degrade flavour, aroma, and colour. Oxidised white wines turn brown and develop stale, nutty, or bruised-apple aromas. Red wines lose their vibrant fruit character and take on flat, prune-like notes.

Oxidation often goes hand-in-hand with AAB spoilage because both are driven by oxygen exposure. However, oxidation can also happen purely through chemical reactions without bacterial involvement – particularly during transfers, racking, filtration, or improper storage where containers aren’t fully sealed.

Proper use of sulfur dioxide (SOโ‚‚) is the primary defense against oxidation. SOโ‚‚ acts as both an antioxidant and an antimicrobial agent, protecting the wine from oxygen damage and suppressing harmful microorganisms simultaneously.

Other microbial spoilage organisms

Lactic acid bacteria (LAB)

While certain LAB, particularly Oenococcus oeni, play a beneficial role in malolactic fermentation (converting sharp malic acid into softer lactic acid), other LAB species like Lactobacillus and Pediococcus can cause serious faults. These include excess production of diacetyl (an overpoweringly buttery flavour), mousey taint (an unpleasant aftertaste resembling rancid nuts), geranium taint (from the metabolism of sorbic acid), and ropiness (a slimy texture in the wine).

LAB are facultative anaerobes – they grow with or without oxygen, which makes them harder to control than AAB. Their spoilage is most common during stuck fermentations and in finished wines with low SOโ‚‚ and residual sugar or malic acid.

Brettanomyces

The yeast Brettanomyces bruxellensis is one of the most feared spoilage organisms in winemaking. It produces volatile phenols that give wine undesirable aromas often described as barnyard, horse sweat, band-aid, or medicinal notes. According to Iowa State University Extension, while some consumers tolerate low levels of Brett-derived aromas in certain wine styles (particularly aged reds from the Rhรดne or southern Italy), most consider its presence a significant fault.

Brettanomyces is particularly challenging because it is tolerant to sulfur dioxide, can survive in bottled wine, and may grow on cellobiose – a sugar released during the toasting of oak barrels. It can infect red wine months after barreling and can even be transmitted by fruit flies.

Hydrogen sulfide and reductive faults

During fermentation, yeast that is starved of nitrogen may produce hydrogen sulfide (Hโ‚‚S), which has a highly recognisable rotten-egg smell. The sensory threshold for Hโ‚‚S is very low – just 8-10 ยตg/L. If not addressed, Hโ‚‚S can further react with other wine compounds to form mercaptans (thiols), producing even more offensive odours like onion, rubber, and skunk.

Supplementing the must with adequate nitrogen (through DAP or complete yeast nutrients) and racking the wine off its lees promptly are effective measures to prevent reductive faults.

Prevention strategies for wine fermentation spoilage

Preventing spoilage is far easier than correcting it. A multi-layered approach works best:

Sanitation: Thorough cleaning and sanitising of all equipment that contacts the must or wine is fundamental. Soap alone is not enough – winemakers should use no-rinse sanitisers like potassium metabisulfite solutions to eliminate bacteria, moulds, and wild yeasts from equipment surfaces.

Grape quality: Sorting grapes carefully at harvest to remove damaged, mouldy, or overripe fruit reduces the microbial load entering the fermentation vessel. Rotten grapes carry significantly higher populations of spoilage organisms.

Sulfur dioxide management: Applying a measured dose of SOโ‚‚ (typically around 50 ppm) to the must at crush helps suppress unwanted wild yeasts and bacteria before inoculation with a selected yeast strain. As recommended by the University of Minnesota Grape Breeding and Enology program, proper and timely SOโ‚‚ management is one of the most effective tools against volatile acidity.

Temperature control: Maintaining a stable fermentation temperature – ideally between 13ยฐC and 30ยฐC depending on the fermentation stage – prevents yeast stress and discourages spoilage organisms. Stainless steel tanks with cooling jackets are standard in modern wineries for this purpose.

Nutrient management: Measuring yeast-assimilable nitrogen (YAN) before fermentation and supplementing if needed ensures yeast have the resources to complete fermentation. Complete nutrients that include amino acids, vitamins, and minerals are preferred over DAP alone.

Oxygen control: Minimising oxygen exposure throughout fermentation, aging, and bottling is critical. This includes keeping vessels topped up, using inert gas blankets (COโ‚‚ or nitrogen), and ensuring tight seals on all storage containers.

Detecting spoilage early

Early detection gives winemakers the best chance to intervene before spoilage becomes irreversible. Regular monitoring of key parameters – such as residual sugar (using a hydrometer), volatile acidity levels, free and total SOโ‚‚, and temperature – is essential throughout the winemaking process.

Sensory evaluation also plays an important role. The smell of nail polish remover (ethyl acetate), vinegar (acetic acid), rotten eggs (hydrogen sulfide), or barnyard (Brettanomyces) are all warning signs that should prompt immediate testing and corrective action.

Emerging technologies are also making real-time detection possible. A recent study published in Microbial Biotechnology and covered by Phys.org described a living biosensor made from engineered bacteria that glows in response to acetic acid. The biosensor works in both liquid wine and the headspace air above it, providing early warning before spoilage becomes advanced.

The bigger picture: spoilage as a microbial balancing act

It’s worth noting that many spoilage organisms are not inherently “bad.” They are part of the natural microbial ecosystem of grapes and wine. The distinction between beneficial and harmful often depends on context, concentration, and control. Oenococcus oeni is essential for malolactic fermentation but can produce excessive diacetyl if not managed. Some non-Saccharomyces yeasts, once dismissed as spoilage organisms, are now commercially available and valued for the aromatic complexity they contribute to wine when used in controlled fermentation settings.

Effective winemaking, therefore, is less about eliminating all microorganisms and more about managing the microbial environment – creating conditions that favour the desired organisms while suppressing those that cause harm.

What do you think? Have you ever tasted a wine that clearly exhibited spoilage characteristics like vinegar notes or barnyard aromas, and did it change the way you think about the importance of fermentation management? What spoilage prevention strategy do you consider most critical for producing consistently good wine?

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References
  1. https://extension.psu.edu/whats-in-the-wine-microbiome
  2. https://en.wikipedia.org/wiki/Stuck_fermentation
  3. https://winemakermag.com/wine-wizard/curing-a-stuck-fermentation
  4. https://westgarthwines.com/blogs/news/alcoholic-fermentation-stuck-fermentation
  5. https://pubmed.ncbi.nlm.nih.gov/18237809/
  6. https://www.sciencedirect.com/topics/food-science/acetic-acid-bacteria
  7. https://www.extension.iastate.edu/wine/defining-spoilage
  8. https://enology.umn.edu/news/volatile-acidity-wine-making
  9. https://phys.org/news/2026-01-early-wine-spoilage-dark.html

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Food Chemistry and Physiology

1 An Overview of Food Chemistry

  1. What is Food Chemistry?
  2. History of Food Chemistry
  3. Functions of Food Chemistry
  4. Chemical Composition of Foods
  5. Quality Changes in Foods
  6. Safety Evaluation of Foods
  7. Waste Management
  8. Societal Roles

2 An Overview of Food Physiology

  1. Morphological Characteristics
  2. Post-Harvest Physiology of Fruits and Vegetables
  3. Structural Changes during Growth and Ripening
  4. Compositional Changes during Growth and Ripening

3 Food Constituents- Carbohydrates and Lipids

  1. Carbohydrates
  2. Chemical Reactions of Carbohydrates
  3. Lipids
  4. Fatty Acids

4 Food Constituents- Proteins, Enzymes and Water

  1. Amino Acids
  2. Protein Denaturation
  3. Enzymes
  4. Water Activity and Food Spoilage

5 Food Constituents- Vitamins and Minerals

  1. Vitamins
  2. Fat Soluble Vitamins
  3. Water Soluble Vitamins
  4. Minerals
  5. Micronutrient Fortification

6 Food Additives

  1. Preservatives
  2. Antioxidants
  3. Acidulants
  4. Colouring Agents
  5. Flavouring Agents
  6. Sweeteners
  7. Miscellaneous Additives

7 Ethylene Liberation and its Control

  1. Sources of Ethylene
  2. Uses of Ethylene
  3. Ethylene as Ripening Inducer
  4. Biogenesis of Ethylene
  5. Mechanism of Ethylene Action
  6. Ethylene Treatment Systems
  7. Control

8 Growth, Maturation and Senescene

  1. Physicochemical Changes during Growth of Storage Organs
  2. Mechanism of Nutrient Mobilization and Accumulation
  3. Respiration and Respiratory Climacteric
  4. Climacteric and Non-Climacteric Fruits and Vegetables
  5. Morphological and Chemical Changes during Ripening and Senescence

9 Physiological Disorders

  1. Physiological Disorder of Tropical and Sub-tropical Produce
  2. Low Temperature Disorders โ€“ Chilling Injury
  3. High Temperature Disorders
  4. Disorders due to Altered Atmospheric Composition
  5. Mineral Deficiency Disorders
  6. Storage Disorders
  7. Disorders of Uncertain Causes

10 Fermentation, Method of Fermentation and Industrial Significance

  1. History of Food Fermentations
  2. Microbiology and Biochemistry
  3. Nutritional Values of Fermented Foods
  4. Nutritional Quality of Fermented Vegetables and Fruits
  5. Possible Harmful Effects
  6. Classification of Fermented Foods
  7. General Methods of Fermentation
  8. Pre-requisites for Industrial Fermentations
  9. Computer Applications in Fermentations

11 Fruit and Vegetables-based Fermentation and their Commercial Products

  1. Lactic Acid Fermented Fruits and Vegetables
  2. Sauerkraut (Cabbage) Fermentation
  3. Cucumbers Fermentation
  4. Kimchi Fermentation
  5. Indian Sinki Fermentation
  6. Fermented Pickles

12 Fruit-based Alcoholic Beverages

  1. Types of Wine
  2. Fruits Used for Wine-making
  3. Important Factors Influencing the Quality of Wine
  4. Microorganisms Involved in Wine-making
  5. Prefermentative Practices in Wine-making
  6. Fermentation
  7. Spoilage of Fermentation and Wine
  8. Post-fermentative Practices
  9. Wine from Different Varieties of Fruits
  10. Chemical Composition of Wine

13 Technological Aspects of Industrial Production of Alcoholic Beverages and Related Products

  1. Fermenters
  2. Technology for Cider-making
  3. Technology of Sparkling Cider
  4. Technology of Fortified Wines: Vermouth
  5. Technology for Brandy-making
  6. Technology of Fenny and Brandy of Cashew Apple
  7. Technology of Vinegar Production by Fermentation