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Hypha

life science Maturity 9-11

A hypha is a tiny tube.

Hypha on rice.jpg
Hypha on rice.jpg
It is part of a fungus. These tubes grow in long lines. They grow at the very tips. They help the fungus find food.
HYPHAE.png
HYPHAE.png
Can you find them in the dirt?

41 words

A hypha is a tiny tube.

Hypha on rice.jpg
Hypha on rice.jpg
It is part of a fungus. These tubes grow in long lines. They grow at the very tips. This helps the fungus grow more.
HYPHAE.png
HYPHAE.png
Inside, tiny walls can divide the tube. These walls have small holes. Things can flow through the holes. Some tubes can even weave through surfaces. They can grow toward things they sense. This helps the fungus find what it needs.
Penicillium.jpg
Penicillium.jpg
It is a busy way for a fungus to live.

85 words

A hypha is a long, thin tube. It is a part of a fungus. Many hyphae grow together to make a mycelium.

Hypha on rice.jpg
Hypha on rice.jpg
Most hyphae have tiny walls inside them. We call these walls septa. These walls have small holes. Parts like the nucleus can flow through the holes. Some fungi do not have these walls.

Hyphae grow at their very tips. A special part helps them grow. It is called the Spitzenkörper.

HYPHAE.png
HYPHAE.png
This part holds small sacs called vesicles. These sacs carry parts for the cell wall. The sacs release their contents outside the cell. This helps the tip grow longer. The Spitzenkörper also helps the hypha branch out.

Hyphae can change to do special jobs. Some fungi use them to soak up food. Others use them to trap tiny worms.

Penicillium.jpg
Penicillium.jpg
Some hyphae grow in the air to make spores. This helps the fungus make new life. Hyphae can even sense things in the world. They can grow toward things they find.

167 words

A hypha is a long and branching tube. It is a part of a fungus, an oomycete, or an actinobacterium.

HYPHAE.png
HYPHAE.png
In most fungi, these tubes are how the living thing grows. When many hyphae grow together, they form a large group called a mycelium. Most hyphae have a diameter between 4 and 6 micrometers. They are made of one or more cells. These cells are wrapped in a tubular cell wall made of chitin.
Hypha on rice.jpg
Hypha on rice.jpg
This is different from plants, which use cellulose for their walls.

Hyphae grow at their very tips. A special part inside the tip helps this happen. It is called the Spitzenkörper, which is a German word for "pointed body."

Conidium.png
Conidium.png
This part holds many tiny sacs called vesicles. These vesicles come from a part of the cell called the Golgi apparatus. The vesicles move through the cell to the tip. They release their contents outside the cell through a way it works called exocytosis. These contents build new cell walls and membranes. This allows the tip to grow longer or branch out.

Many fungi have internal cross-walls called septa. These septa divide the hypha into individual cells.

Penicillium.jpg
Penicillium.jpg
Most septa have small holes or pores. These pores are large enough for parts like ribosomes or mitochondria to flow through. Some fungi are different and have aseptate hyphae. This means they do not have these internal walls. Some fungi, like the Mucor, are known for being non-septate. Other things, like yeasts, can form pseudohyphae. These look like hyphae but grow through an incomplete budding process.

Scientists use different names to group these structures. In 1932, a man named E. J. H. Corner created a way to classify them. He looked at how they make up the bodies of fungi. He found three main types: generative, skeletal, and binding hyphae. Generative hyphae are thin-walled and can make reproductive parts. Skeletal hyphae are very long and have thick walls. Binding hyphae are also thick-walled and branch a lot. In 1966, Corner added even more detail to these names. He used terms like monomitic, dimitic, and trimitic to describe them.

Hyphae can change their shape to do many jobs. Some fungi use special parts called haustoria to soak up food from a host. Other fungi use them to make nets that trap tiny worms.

Aspergillus niger 01.jpg
Aspergillus niger 01.jpg
Some hyphae grow in the air to make spores. This helps the fungus spread to new places. Hyphae can even sense the world around them. They can grow toward reproductive units or even respond to electric fields. They can even weave through surfaces to go inside them.

438 words

A hypha is a long, branching, and filamentous structure. These structures belong to fungi, oomycetes, or actinobacteria. In most fungi, hyphae serve as the primary mode of vegetative growth. When many hyphae grow together in a mass, they are called a mycelium.

HYPHAE.png
HYPHAE.png
Most hyphae have an average diameter of 4 to 6 micrometers. They consist of one or more cells surrounded by a tubular cell wall. In fungi, this wall is typically made of a structural polymer called chitin. This differs from plants and oomycetes, which use cellulose for their cell walls.

Hyphae grow specifically at their tips through a process called apical growth. This growth occurs as the cell extends its walls through the external assembly of new components. Inside the cell, the membrane is also being produced. A key organelle in this process is the Spitzenkörper, a German term meaning "pointed body."

Conidium.png
Conidium.png
The Spitzenkörper is part of the endomembrane system. It acts as a collection point for membrane-bound vesicles received from the Golgi apparatus. These vesicles travel to the cell membrane using the cytoskeleton. Through exocytosis, the vesicles release their contents outside the cell. These contents include various cysteine-rich proteins, such as hydrophobins and cerato-platanins. The vesicle membranes help grow the cell membrane, while the contents form the new cell wall. The movement of the Spitzenkörper along the apex regulates the rate of growth and branching.

Hyphae can be classified by how their cells are divided. Most fungi have septate hyphae, which means they are partitioned by internal cross-walls called septa.

Penicillium.jpg
Penicillium.jpg
These septa are usually perforated by pores. These pores allow ribosomes, mitochondria, and sometimes nuclei to flow between cells. However, some fungi possess aseptate hyphae. These are also called coenocytic hyphae because they lack these internal partitions. For example, the fungus Mucor has non-septate hyphae. Yeast can also form pseudohyphae. These are not true hyphae because they grow through an incomplete budding process. In pseudohyphae, cells elongate but remain attached after division, lacking cytoplasmic connections.

Hyphae are highly adaptable and can modify their shapes for specific functions. Some parasitic fungi develop haustoria, which are specialized structures used for absorption within a host's cells. In mutualistic relationships, mycorrhizal fungi use arbuscules to exchange nutrients with plants.

Aspergillus niger 01.jpg
Aspergillus niger 01.jpg
These arbuscules help plants absorb water and nutrients. Ectomycorrhizal fungi create an extramatrical mycelium that increases the soil area available to plant hosts. In lichens, hyphae envelop the gonidia to form much of the lichen's structure. Some fungi even use hyphae to hunt. Nematode-trapping fungi can grow hyphae into constricting rings or adhesive nets to catch tiny worms. Other hyphae form mycelial cords to move nutrients over long distances.

In the study of basidiomycetes, hyphae are categorized by their physical characteristics. There are three main types: generative, skeletal, and binding hyphae. Generative hyphae are relatively undifferentiated and can develop into reproductive structures. They are typically thin-walled and often have frequent septa. Skeletal hyphae are much longer and have very thick walls. They are often unbranched and have few septa. There is also a version called fusiform skeletal hyphae, which are swollen in the center and very broad. Binding hyphae are also thick-walled but are frequently branched. They can resemble the shape of deer antlers or defoliated trees.

In 1932, a researcher named E. J. H. Corner created a system to classify these hyphal structures. He used the types of hyphae to describe the systems in polypores. If a fungus contains only generative hyphae, it is called monomitic. Fleshy mushrooms, such as agarics, are monomitic. If a fungus has generative hyphae plus either skeletal or binding hyphae, it is dimitic. Most dimitic fungi combine generative and skeletal hyphae. In 1966, Corner refined these terms further. A fungus with all three types is called trimitic. This complexity gives leathery or woody fungi, like polypores, their tough texture. Some specialized systems are called sarcodimitic or sarcotrimitic depending on the specific combination of these hyphal types.

Hyphae also show complex behaviors in response to their surroundings. They can sense reproductive units from a distance and grow toward them. They can also sense and respond to environmental stimuli, such as an electric field.

Hypha on rice.jpg
Hypha on rice.jpg
Furthermore, hyphae are capable of weaving through permeable surfaces to penetrate them. They can be categorized by where they grow, such as vegetative hyphae or aerial hyphae. Aerial hyphae are important because they produce asexual reproductive spores. This ability to grow and respond allows fungi to interact deeply with their entire ecosystem.

747 words
🖼️ Images & Media (5)
File:Penicillium.jpg
Penicillium.jpg
File:HYPHAE.png
HYPHAE.png
File:Hypha on rice.jpg
Hypha on rice.jpg
File:Aspergillus niger 01.jpg
Aspergillus niger 01.jpg
File:Conidium.png
Conidium.png
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