Unit 3: Classification of Nematodes - Subjective Questions
PTH214 — Fundamentals Of Nematology • Practice Questions with Detailed Answers
20 questions
Define nematode classification and explain the principal characters used to classify nematodes up to the family level.
Nematode classification is the systematic arrangement of nematodes into hierarchical groups such as classes, orders, superfamilies, families, genera, and species based on shared characters and evolutionary relationships.
Important characters used in classification include:
- Body and cuticle: Body shape, annulation, lateral fields, and cuticular ornamentation.
- Lip region: Number and arrangement of lips, lip annules, and cephalic framework.
- Feeding apparatus: Presence or absence of a stylet, stylet type, stylet knobs, and odontostyle structure.
- Oesophagus or pharynx: Shape, glands, median bulb, terminal bulb, and gland overlap.
- Sensory organs: Structure and position of amphids, phasmids, and cephalic sensilla.
- Female reproductive system: Number of genital branches, position of vulva, ovaries, and uterus.
- Male reproductive system: Spicules, gubernaculum, bursa, and supplementary organs.
- Tail characters: Tail shape, length, terminus, and presence of a hyaline region.
- Biological characters: Feeding habit, host association, life cycle, and parasitic behavior.
- Molecular characters: DNA sequences, especially ribosomal DNA regions, are increasingly used to establish phylogenetic relationships.
Distinguish between the traditional classes Adenophorea and Secernentea.
The traditional classification divides nematodes into Adenophorea and Secernentea.
| Character | Adenophorea | Secernentea |
|---|---|---|
| Phasmids | Usually absent | Usually present |
| Amphids | Generally large, post-labial, and variable in shape | Generally small, pore-like, and located near the lips |
| Excretory system | Glandular or absent | Usually tubular, with lateral canals |
| Caudal glands | Commonly present | Usually absent |
| Deirids | Generally absent | Often present |
| Habitat | Many marine and free-living forms; some plant parasites | Mainly terrestrial; includes many plant and animal parasites |
| Important plant-parasitic groups | Dorylaimida and Triplonchida | Tylenchida and Aphelenchida |
This division is useful for introductory identification, although modern molecular systems often use the classes Enoplea and Chromadorea and may alter the placement of some orders.
Describe the diagnostic features and economic importance of the order Tylenchida.
The order Tylenchida contains the majority of economically important plant-parasitic nematodes.
Diagnostic features:
- Possess a hollow, protrusible stomatostylet with basal knobs.
- Stylet is used to puncture plant cells and withdraw their contents.
- Oesophagus usually has a procorpus, a muscular median bulb with a valve, an isthmus, and a glandular basal region.
- Amphids are generally small and pore-like.
- Phasmids are usually present.
- Females may be vermiform, swollen, pear-shaped, or spherical.
- Males usually possess paired spicules and a gubernaculum.
Economically important groups:
- Meloidogynidae: Root-knot nematodes, Meloidogyne spp.
- Heteroderidae: Cyst nematodes, Heterodera and Globodera spp.
- Pratylenchidae: Lesion nematodes, Pratylenchus and Radopholus spp.
- Hoplolaimidae: Lance and spiral nematodes, including Hoplolaimus and Helicotylenchus.
- Anguinidae: Seed and leaf-gall nematodes, including Anguina and Ditylenchus.
Members of this order damage roots, stems, bulbs, leaves, and seeds, resulting in reduced crop growth, yield, and quality.
Explain the classification and important features of the family Meloidogynidae.
The family Meloidogynidae includes the root-knot nematodes, principally the genus Meloidogyne.
Important features:
- Adult females are sedentary, pear-shaped, or globose and remain embedded in roots.
- Adult males are vermiform and usually do not feed.
- The second-stage juvenile is the infective stage.
- Juveniles enter roots near the zone of elongation and migrate to the vascular region.
- Feeding induces specialized multinucleate cells called giant cells.
- Root tissues enlarge and commonly form characteristic galls or knots.
- Eggs are deposited in a gelatinous matrix, often on the root surface.
- The female perineal pattern, juvenile morphology, enzyme profiles, and molecular markers are used for species identification.
Economically important species include Meloidogyne incognita, M. javanica, M. arenaria, and M. hapla. They attack numerous vegetables, pulses, fruit crops, ornamentals, and field crops. Their wide host range and interaction with fungal and bacterial pathogens make them among the most destructive plant-parasitic nematodes.
Compare the families Meloidogynidae and Heteroderidae with reference to morphology, feeding sites, and survival structures.
| Character | Meloidogynidae | Heteroderidae |
|---|---|---|
| Common name | Root-knot nematodes | Cyst nematodes |
| Important genera | Meloidogyne | Heterodera and Globodera |
| Adult female | Pear-shaped or globose | Lemon-shaped in Heterodera and rounded in Globodera |
| Root symptom | Usually produces conspicuous root galls | Commonly causes root stunting and excessive lateral roots; large galls are generally absent |
| Feeding site | Multinucleate giant cells | Multicellular syncytium |
| Egg deposition | Most eggs occur in an external gelatinous matrix | Many eggs remain inside the dead female body |
| Survival structure | Eggs and juveniles; no true cyst | Dead, hardened female body forms a resistant cyst |
| Longevity in soil | Survival varies with species and environment | Cysts can protect eggs for several years |
| Diagnostic characters | Female perineal pattern and juvenile characters | Cyst shape, vulval cone, fenestration, and juvenile characters |
Both families contain sedentary endoparasites. Their infective second-stage juveniles penetrate roots, establish permanent feeding sites, and become sedentary after successful infection.
Describe the family Pratylenchidae and discuss the economic importance of its major genera.
The family Pratylenchidae contains important migratory endoparasitic nematodes.
General characters:
- Body is vermiform in both sexes.
- A well-developed stomatostylet is present.
- The oesophageal glands commonly overlap the intestine ventrally.
- Most active stages can enter, feed within, and leave plant tissues.
- Feeding and migration destroy cortical cells and produce necrotic lesions.
Important genera:
- Pratylenchus: Known as lesion nematodes; causes elongated brown or black lesions on roots of cereals, pulses, vegetables, coffee, banana, and other crops.
- Radopholus: The burrowing nematode; R. similis causes severe root necrosis and toppling disease of banana and also attacks citrus and ornamentals.
- Hirschmanniella: Rice-root nematodes adapted to wetland conditions; they migrate through rice roots and reduce root efficiency.
- Nacobbus: The false root-knot nematode; it has migratory and sedentary phases and causes galling in susceptible hosts.
Secondary fungi and bacteria may invade tissues injured by these nematodes, increasing root decay and crop loss.
Write an account of the family Hoplolaimidae, emphasizing economically important genera.
Members of Hoplolaimidae are primarily plant parasites associated with roots. They are usually ectoparasites or migratory endoparasites and possess a strong stomatostylet.
Important genera include:
- Hoplolaimus: Lance nematodes with a large, robust body and strong stylet; they feed on or within roots and damage cotton, maize, turf, and several horticultural crops.
- Helicotylenchus: Spiral nematodes whose relaxed or dead bodies often form a spiral; they are widespread root parasites and can damage banana and other crops at high population densities.
- Rotylenchus: Spiral-shaped ectoparasites or semi-endoparasites associated with many field and horticultural crops.
- Scutellonema: Characterized by enlarged phasmids called scutella; some species damage yam and other tropical crops.
Common family-level characters:
- Strong stylet with prominent basal knobs.
- Well-developed cephalic framework.
- Oesophageal glands overlapping the intestine.
- Usually two female genital branches.
- Feeding causes root lesions, cortical destruction, stunting, and reduced nutrient uptake.
Explain the diagnostic characters and agricultural importance of the family Anguinidae.
The family Anguinidae includes nematodes that parasitize seeds, stems, leaves, bulbs, and other aerial or underground plant parts.
Diagnostic and biological features:
- The body is slender and vermiform.
- The stylet is usually delicate.
- The oesophagus has a muscular median bulb and glandular basal region.
- Many species are adapted to survive desiccation in seeds or dry plant tissues.
- Feeding may cause swelling, distortion, galls, rotting, or necrosis.
Important genera:
- Anguina: Includes seed-gall nematodes. Anguina tritici replaces wheat grains with seed galls and is associated with ear-cockle disease.
- Ditylenchus: Stem and bulb nematodes. D. dipsaci attacks onion, garlic, lucerne, and many other crops, producing swelling and tissue distortion. D. destructor damages potato tubers and underground plant parts.
Anguinids are economically important because some species survive in planting material, spread through seed or bulbs, and may facilitate disease complexes involving microorganisms.
Describe the order Aphelenchida and differentiate its major plant-associated families.
The order Aphelenchida includes fungal feeders, plant parasites, and nematodes associated with insects.
General characters:
- A stomatostylet is present, usually with small or indistinct basal knobs.
- The median oesophageal bulb is large and muscular, with a prominent valve.
- The dorsal oesophageal gland opens into the lumen within or near the median bulb.
- The oesophageal glands form a lobe that overlaps the intestine.
- Many species have only one functional female genital branch.
Major plant-associated families:
- Aphelenchoididae: Includes Aphelenchoides and Bursaphelenchus. Aphelenchoides species may attack leaves, buds, seeds, and fungi. Bursaphelenchus xylophilus causes pine wilt disease and is transmitted by insect vectors.
- Aphelenchidae: Includes Aphelenchus, whose species are mainly fungal feeders but may occur abundantly in agricultural soils.
Aphelenchids are distinguished from typical tylenchids mainly by their oesophageal structure, especially the position of the dorsal gland opening and the prominent median bulb.
Compare the orders Tylenchida and Aphelenchida.
| Character | Tylenchida | Aphelenchida |
|---|---|---|
| Stylet | Stomatostylet, usually with distinct basal knobs | Stomatostylet, often with small or indistinct knobs |
| Median bulb | Usually muscular and valved, but variable among groups | Generally large, prominent, and strongly valved |
| Dorsal gland opening | Usually opens near the stylet base in the procorpus | Commonly opens into the lumen within or close to the median bulb |
| Glandular region | Basal bulb or overlapping gland lobe | Commonly forms a dorsal overlapping lobe |
| Female reproductive system | One or two genital branches | Commonly one functional genital branch |
| Feeding habits | Predominantly plant-parasitic, with some fungal feeders | Fungal feeding is common; some are plant parasites or insect-associated |
| Important genera | Meloidogyne, Heterodera, Pratylenchus, and Rotylenchulus | Aphelenchoides and Bursaphelenchus |
Both orders contain stylet-bearing nematodes, but the structure of the oesophagus and the location of the dorsal gland opening are major diagnostic differences.
Describe the order Dorylaimida and explain the importance of the families Longidoridae and Xiphinematidae.
Members of Dorylaimida are commonly placed in the traditional class Adenophorea. Plant-parasitic species are generally ectoparasites and feed with an odontostyle.
General characters:
- Feeding spear is an odontostyle, derived from the wall of the buccal cavity.
- An odontophore supports the odontostyle posteriorly.
- The oesophagus has a slender anterior region and an expanded, glandular posterior region.
- Amphids are relatively large and pouch-like.
- Phasmids are absent.
- Many species have long life cycles and low reproductive rates.
Longidoridae:
- Includes Longidorus and Paralongidorus.
- Commonly called needle nematodes.
- They possess long odontostyles and feed deeply on root-tip cells.
- Some species transmit plant nepoviruses.
Xiphinematidae:
- Includes Xiphinema, commonly called dagger nematodes.
- The odontostyle is long and has a characteristic guiding apparatus.
- Feeding can cause root-tip swelling, galling, and stunting.
- Several species, such as members of the Xiphinema americanum group, transmit important plant viruses.
Their direct feeding injury and role as virus vectors make these families economically significant.
Distinguish among a stomatostylet, an odontostyle, and an onchiostyle, giving representative nematode groups.
-
Stomatostylet: A hollow, protrusible spear formed from the stomatal or cheilostomal lining. It commonly has a conical anterior shaft and basal knobs. It occurs in Tylenchida and Aphelenchida, including Meloidogyne, Heterodera, and Pratylenchus.
-
Odontostyle: A hollow or grooved, needle-like spear derived from an odontostome in the buccal cavity. It is supported posteriorly by an odontophore and occurs in dorylaimid nematodes such as Xiphinema and Longidorus.
-
Onchiostyle: A solid or grooved feeding spear associated with the stoma of trichodorid nematodes. It is curved and lacks the basal knobs typical of a stomatostylet. It occurs in Trichodorus and Paratrichodorus.
These feeding structures are major taxonomic characters because their origin, shape, supporting structures, and mode of operation differ among higher nematode groups.
Explain the important features of the order Triplonchida, with special reference to the family Trichodoridae.
In widely used classifications, Triplonchida includes the economically important family Trichodoridae, although its placement may vary among taxonomic systems.
Features of Trichodoridae:
- Members are commonly known as stubby-root nematodes.
- They are migratory ectoparasites that feed mainly near root tips.
- The body is relatively short and stout.
- They possess a curved onchiostyle rather than a tylenchid stomatostylet.
- The oesophagus has a well-developed glandular region.
- Important genera are Trichodorus and Paratrichodorus.
Economic importance:
- Feeding kills or suppresses root meristematic cells.
- Repeated injury causes short, thickened, or stubby roots.
- Damaged plants show poor establishment, nutrient deficiency symptoms, and stunting.
- Some species transmit tobraviruses, including Tobacco rattle virus and Pea early-browning virus.
Thus, trichodorids cause both direct root injury and indirect losses through virus transmission.
Classify plant-parasitic nematodes according to their feeding and parasitic habits, giving suitable examples.
Plant-parasitic nematodes can be classified by their position relative to the host and their movement during feeding.
- Migratory ectoparasites: Remain outside roots and move from one feeding site to another. Examples include Xiphinema, Longidorus, Trichodorus, and many Helicotylenchus species.
- Sedentary ectoparasites: Feed from one location for an extended period while most or all of the body remains outside the root. Examples include Mesocriconema and some pin nematodes.
- Semi-endoparasites: Insert the anterior part of the body into the root while the posterior part remains outside. Mature females may become swollen. Examples include Rotylenchulus reniformis and Tylenchulus semipenetrans.
- Migratory endoparasites: Enter plant tissue and move through it while feeding. Examples include Pratylenchus, Radopholus, and Hirschmanniella.
- Sedentary endoparasites: Enter roots as juveniles, establish a permanent feeding site, and become immobile. Examples include Meloidogyne, Heterodera, and Globodera.
- Aerial-tissue parasites: Feed on stems, leaves, buds, seeds, or bulbs. Examples include Ditylenchus, Anguina, and Aphelenchoides.
This classification is biologically useful because feeding habit affects symptoms, survival, sampling procedures, and management strategies.
Differentiate between migratory endoparasites and sedentary endoparasites.
| Character | Migratory endoparasites | Sedentary endoparasites |
|---|---|---|
| Movement in host | Move through plant tissue while feeding | Establish one permanent feeding site |
| Stages that feed | Several juvenile stages and adults may feed | Primarily juveniles and females feed at a fixed site |
| Body form | Usually vermiform throughout life | Adult females often become swollen |
| Feeding-site modification | Usually limited; cells are punctured and destroyed | Highly specialized feeding cells are induced |
| Typical damage | Necrotic lesions, cavities, and tissue decay | Galls, syncytia, nutrient sinks, and root-system disruption |
| Examples | Pratylenchus, Radopholus, and Hirschmanniella | Meloidogyne, Heterodera, and Globodera |
Migratory endoparasites cause damage through continuous movement and cell destruction. Sedentary endoparasites manipulate host development to form long-lasting feeding structures such as giant cells or syncytia.
What are semi-endoparasitic nematodes? Describe their characteristics using Rotylenchulus and Tylenchulus as examples.
Semi-endoparasitic nematodes feed with the anterior portion of the body embedded in plant tissue while the posterior portion remains exposed outside the root.
General characteristics:
- The infective stage penetrates only partly into the root.
- The nematode establishes a relatively permanent feeding relationship.
- Mature females commonly enlarge, whereas males remain vermiform.
- Eggs are frequently laid in a gelatinous matrix outside the root.
Examples:
- Rotylenchulus reniformis: The reniform nematode. The immature female is vermiform and penetrates the root before becoming kidney-shaped. It attacks cotton, pulses, vegetables, and many tropical crops.
- Tylenchulus semipenetrans: The citrus nematode. The female inserts its anterior region into feeder roots, while the swollen posterior remains outside. Infested roots retain soil particles and may appear dirty. Chronic infection causes slow decline of citrus.
Their partially exposed position influences diagnosis and management because eggs and females may occur on the root surface while feeding tissues lie within the root.
Explain how plant-parasitic nematodes are classified according to the plant organ or ecological site they attack.
Plant-parasitic nematodes may be grouped according to the plant organ or ecological site in which they feed.
- Root parasites: Attack roots and are the largest category. Examples include Meloidogyne, Heterodera, Pratylenchus, Rotylenchulus, and Xiphinema.
- Stem and bulb parasites: Invade stems, bulbs, and underground storage tissues. Ditylenchus dipsaci attacks stems and bulbs, while D. destructor damages tubers and storage organs.
- Leaf and bud parasites: Feed within leaves or buds, often causing angular lesions, distortion, and necrosis. Examples include Aphelenchoides fragariae and A. ritzemabosi.
- Seed and floral parasites: Invade developing inflorescences or seeds. Anguina tritici transforms wheat grains into seed galls.
- Wood parasites: Occur in woody tissues and may be associated with insect vectors. Bursaphelenchus xylophilus invades pine xylem and causes pine wilt.
- Fungal feeders in the rhizosphere: Feed primarily on fungal hyphae rather than directly on plants. Examples include Aphelenchus and some Aphelenchoides species.
This ecological classification helps relate nematode identity to symptoms, sampling location, dissemination, and control measures.
Describe the role of plant-parasitic nematodes as vectors of plant viruses and classify the principal vector groups.
Some ectoparasitic nematodes acquire virus particles while feeding on infected roots and transmit them when they subsequently feed on healthy plants. These relationships are usually specific to particular nematode and virus groups.
Principal vector groups:
- Longidoridae and Xiphinematidae: Species of Longidorus, Paralongidorus, and Xiphinema transmit mainly nepoviruses. Virus particles are retained at specific sites in the feeding apparatus and oesophageal region.
- Trichodoridae: Species of Trichodorus and Paratrichodorus transmit tobraviruses, including Tobacco rattle virus and Pea early-browning virus.
Transmission process:
- The nematode feeds on an infected root and acquires virus particles.
- Virus particles are retained on specific surfaces of the feeding tract.
- The nematode moves to a healthy root.
- Feeding secretions and stylet activity release the virus into host cells.
The virus generally does not multiply inside the nematode. Vector nematodes are economically important because low populations can spread disease and because controlling the virus requires management of both the vector and infected host sources.
Prepare a family-level classification of major plant-parasitic nematodes and mention one or more economically important genera in each family.
A practical family-level outline of major plant-parasitic nematodes is as follows. Exact higher-level placement may differ among traditional and molecular classifications.
Order Tylenchida:
- Meloidogynidae: Meloidogyne — root-knot nematodes.
- Heteroderidae: Heterodera and Globodera — cyst nematodes.
- Pratylenchidae: Pratylenchus, Radopholus, and Hirschmanniella — lesion, burrowing, and rice-root nematodes.
- Hoplolaimidae: Hoplolaimus, Helicotylenchus, Rotylenchus, and Scutellonema — lance and spiral nematodes.
- Rotylenchulidae: Rotylenchulus — reniform nematodes.
- Tylenchulidae: Tylenchulus — citrus nematodes.
- Anguinidae: Anguina and Ditylenchus — seed-gall, stem, and bulb nematodes.
- Belonolaimidae: Belonolaimus and Tylenchorhynchus — sting and stunt nematodes.
- Criconematidae: Criconema and Mesocriconema — ring nematodes.
- Paratylenchidae: Paratylenchus — pin nematodes.
Order Aphelenchida:
- Aphelenchoididae: Aphelenchoides and Bursaphelenchus — foliar and pinewood nematodes.
- Aphelenchidae: Aphelenchus — mainly fungal feeders.
Order Dorylaimida:
- Longidoridae: Longidorus and Paralongidorus — needle nematodes.
- Xiphinematidae: Xiphinema — dagger nematodes.
Order Triplonchida:
- Trichodoridae: Trichodorus and Paratrichodorus — stubby-root nematodes.
Discuss why feeding habit and parasitic behavior are important in the identification and management of plant-parasitic nematodes.
Feeding habit and parasitic behavior provide biologically meaningful characters for both nematode classification and crop protection.
Importance in identification:
- The location of the nematode inside or outside the root helps narrow its identity.
- Sedentary swollen females suggest groups such as Meloidogyne, Heterodera, or Rotylenchulus.
- Migratory lesions indicate nematodes such as Pratylenchus or Radopholus.
- Feeding structures distinguish major groups, including stomatostylet-bearing tylenchids, odontostyle-bearing dorylaimids, and onchiostyle-bearing trichodorids.
- Specialized feeding sites, such as giant cells and syncytia, provide additional diagnostic evidence.
Importance in management:
- Ectoparasites are exposed in soil and may be affected by soil treatments, but their broad vertical distribution can complicate control.
- Endoparasites are protected within plant tissues, reducing exposure to contact treatments.
- Sedentary parasites depend on long-term feeding sites and may be managed through resistant cultivars that disrupt feeding-site development.
- Migratory parasites can leave roots and attack new tissues, making crop sanitation and rotation important.
- Seed, bulb, and foliar parasites require clean planting material and quarantine measures.
- Virus-vector nematodes require management at very low population densities because even limited feeding can spread viruses.
Therefore, parasitic behavior determines symptom development, sampling method, survival, dissemination, and the choice of effective management practices.
Define nematode classification and explain the principal characters used to classify nematodes up to the family level.
Nematode classification is the systematic arrangement of nematodes into hierarchical groups such as classes, orders, superfamilies, families, genera, and species based on shared characters and evolutionary relationships.
Important characters used in classification include:
- Body and cuticle: Body shape, annulation, lateral fields, and cuticular ornamentation.
- Lip region: Number and arrangement of lips, lip annules, and cephalic framework.
- Feeding apparatus: Presence or absence of a stylet, stylet type, stylet knobs, and odontostyle structure.
- Oesophagus or pharynx: Shape, glands, median bulb, terminal bulb, and gland overlap.
- Sensory organs: Structure and position of amphids, phasmids, and cephalic sensilla.
- Female reproductive system: Number of genital branches, position of vulva, ovaries, and uterus.
- Male reproductive system: Spicules, gubernaculum, bursa, and supplementary organs.
- Tail characters: Tail shape, length, terminus, and presence of a hyaline region.
- Biological characters: Feeding habit, host association, life cycle, and parasitic behavior.
- Molecular characters: DNA sequences, especially ribosomal DNA regions, are increasingly used to establish phylogenetic relationships.
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