Showing posts with label receptor. Show all posts
Showing posts with label receptor. Show all posts

Friday, August 29, 2014

Daily Newsletter: August 29, 2014 - Characteristics of Life

Daily Newsletter
August 29, 2014 

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Characteristics of Life

In order to have a meaningful discussion about living systems, we must first identify that which we will consider "living."  To do this, we identify characteristics that will allow us to differentiate between living and non-living objects.  To be effective, these characteristics must be see in all examples of life.

As a first principle, we will start with the cell theory:  All living organisms are composed of cells, and all cells come from pre-existing cells.  Thus, the cell is the basic unit of life.  One of our goals this semester is to gain an understanding of the cell, and build a working model of how a cell functions.  As a frame four this semester long discussion, let's first look at how the characteristics of life are revealed in a cell.

  1. Homeostasis:  i.e., the same state.  This refers to the ability of a cell to maintain a constant 'internal' environment.  The environment around the cell can change (e.g., hot to cold, low salt to high salt), but the cell it self remains stable.  [Caveat:  All organisms have a range of environmental conditions where they can live; if you exceed the range, then the cell can not maintain homeostasis].  We shall see that the cell membrane is the defining structure of all cells, as it creates a boundary (inside vs. outside).  It is from this basic idea, and how we move things across the membrane, that we shall build the concept of homeostasis.
    • A corollary characteristic is adaptation.   Cells can change in response to the environment.  For example, bacterial cells can change the phospholipids in their cell membrane as temperature changes.  One way this is done is by changing the amount of saturated fatty acids used in making phospholipids.  
    • In order to adapt, you need to know how the environment changed.  This is done through systems of cellular receptors.  Stimulus (environmental change) ---> Receptor -----> Adaptation.  So cells also have the ability to Respond to Stimuli.  These stimuli could be physical factors (temperature or pH), or they could be chemical.  The thing to remember is that cells (and all life) have some type of Stimulus-Response (Receptor or Communication) system.
  2. Growth:  It is easy to see a human growing from infant, through adolescence, to adulthood.  But what about cells?  We could look for the growth in size, but that can be difficult when looking at a single cell.  Instead for cells, we look at Cell Number (population size) and/or Biomass (e.g., the amount of carbon or maybe the dry weight of the population).  Growth is based on two other characteristics of life.
    • Metabolism:  i.e.,  all chemical reactions in the body.  Often down played to just energy acquisition, metabolism also involves the acquisition of Carbon (needed for all biochemical compounds), other essential elements (like nitrogen), and the building of new biomolecules.  As cells make more biomolecules, they grow, and eventually divide.
    • Reproduction:  reproduction is essentially the creation of new individual organisms, and is easily seen when a baby is born.  But reproduction has its basis in cellular action.  A cell, when given the correct stimulus, can divide.  Possibly it has grown too large, or it may have received a chemical signal to divide.  In either case, a cell will divide into two daughter cells.  Terms that will come up with reproduction are: binary fision, mitosis, meiosis, and cytokineses.
  3. You may remember from other courses that Organization is often given as a characteristic.  Instead of talking about tissues and organs, I would remind you that living organisms are composed of cells.  If you have active, working cells, then you are living.  Doesn't matter if it is one cell or a million.

  

Monday, October 14, 2013

Daily Newsletter: October 14, 2013 - Basics of Cell Communication

Daily Newsletter

October 14, 2013 - Basics of Cell Communication


This week, we come to the end of building our mental picture of the fundamental unit of life: the cell.  What we have done up to now is look at the building blocks that make up cells: the phopholipid bilayer with all of the associated membrane proteins; how proteins are formed, and how they work; how cells acquire energy and carbon; and now, how they interact with their environment.

Cells must be able to sense their environment and respond to environmental stimuli.  The environment could be the intersitial fluid bathing the cells of your body, the moist soil around a plant root hair, or even the old cheese in your refrigerator that is now starting to mold.  Remember that all cells strive for homeostasis, and being able to respond to changes in the environment helps them to maintain and balance their dynamic metabolic equilibrium.

In order to maintain homeostasis, cell require some mechanism to receive environmental signals, and then process those signals into a response. All cells, prokaryotes and eukaryotes, have this ability. Beyond just responding to the environment, we now know that cells, even bacteria and archaea, possess the ability to signal each other. In multicellular organisms, we will talk about the coordination of metabolism and growth using chemical signals. In humans, from the embryo stage til death, cells are constantly talking to each other.

Signal reception occurs in all known organisms (from picking up environmental to cellular signals). For instance, in bacteria, we know of a signal phenomena known as Quorum Sensing. With this signal system, bacteria release chemicals as they grow which other individuals of the same species (and some times other species) pick up; when the concentration of the chemical reaches a critical point, cellular changes can be observed in the community. Basically, as the population increases, cells begin to change.

But how do cells pick up signals? Signal recognition begins with receptors (generally protein in nature; many are glycoproteins).

For a cell to pick up, or register, a signal, it must build a receptor for that signal.
(IMPORTANT NOTE: a cell that lacks a receptor for signal X can not register signal X; they are deaf to the signal). This sets up another question: what is a signal?

Most of the signals we will talk about are chemical signals (aka, Ligands), meaning we have a chemical compound that will "fit" a receptor, activating it. There are other signals though: light can be a signal (photoreception), temperature (thermoreception), and even mechanical such as touch (mechanoreception). As mentioned, out discussions for this week will focus on chemical signal pathways.
By far, the most common type of signal system will involve chemicals. Hormones are chemical signals, neurotransmitters are chemical signals, even carbon dioxide is used as chemical signal in the human body. Because there are so many different chemical signals, we have a generic word for any compound that could bind and activate a receptor protein: Ligand. As a general word, ligand is used when we discuss the basic concepts of signal systems. (NOTE: In biology we have a number of GENERIC words that are used in discussing basic pathways or models. Ligand is one of those terms).
At their most basic, a chemical signal system (or pathway) will be comprised of a Ligand and a Receptor. When a ligand binds to a receptor (ligand-receptor complex), the receptor changes shape (conformation), which elicits a physiological response in the cell. Remember: The receptor is based on a  protein, and when proteins change shape, they have an effect on the cell. So the basic signal system will be: Ligand binds to receptor, receptor changes shape, cellular response occurs. This is known as Signal Transduction.External reactions and internal reactions for signal transduction

Ligands are chemical signals, and receptors are based on proteins. The receptor is folded so that it forms a binding space (active or binding site*) where the ligand can dock and bind. A common thought is that every receptor has a specific ligand, and that nothing else binds to the receptor. A lovely fiction.

To the right is an image of the μ-Opioid receptor (μ is the Greek Letter Mu). μ-Opioid ReceptorThis receptor is found in human neural tissue, and provides analgesic effects and feelings of euphoria. It can also cause respiratory depression and reduced GI motility. The main ligands for this receptor are enkephalins and β-endorphin. Yes, this receptor set has two potential ligands. It also has a list of agonistic and antagonistic compounds that can bind to the receptor.

When we speak of receptors and ligands, we talk about the affinity of the receptor for a particular ligand. Remember, we have folded the protein to create a 3-D shape. In the case of the μ-Opioid receptor, the folded protein has a notch where the ligand can slip in. This notch will have chemical properties complementary to the ligand.

A high affinity would imply that the physical shape and chemical properties of the notch are a good match to a given ligand. In this case, beta-endorphin is a strong chemical and physical match to the binding site (notch) of the μ-Opioid receptor. Dynorphins, which are another type of neurotransmitter (ligand) in the brain, have a low affinity for the μ-Opioid receptor's binding site, meaning the shape and chemical properties are not a good match.

This sets up another aspect of receptors: agonists and antagonists. These terms represent chemical mimics of the natural ligand(s) of a given receptor. Agonists are chemical mimics that bind to a receptor and trigger a cellular response; in other words they work like the ligand. Antagonists on the other hand are chemical mimics that bind to a receptor and block a cellular response. Active and inactive μ-opioid receptors.In fact, antagonists can stay bound and prevent activation of the receptor. A well known agonist for μ-Opioid receptor is morphine. Morphine can bind to the μ-Opioid receptor and active the cellular response that leads to analgesic effects, feelings of euphoria and respiratory depression. To the left is an image depicting agonistic and antagonistic bindings possible with the μ-Opioid receptor. NOTE: The agonist relationship implies an activation of the cellular response, while the antagonistic relationship implies an inactivation of the cellular response.

Morphine is a powerful analgesic with many well known side effects. One of the most dangerous of these side effects is physical addiction and an increased tolerance for the drug (you need more and more to get the same effect over time). This provides a good example of another principle of receptors: Regulation.

Down Regulation: When a cell receives too much signal, it will begin to down regulate the receptors. This means that the cell stops producing the quantity of the specific receptor it usually makes. For membrane bound receptors, over time, as the membrane is repaired and refurbished (a constant dynamic process), the number of expressed receptors drops. The result is that the cell is less sensitive to the signal. Why does a cell do this? Think of it as a person being exposed to loud noises. If it happens once, for a short period of time, the body can compensate. What if the person is continuously exposed to the loud noise? Eventually they become less sensitive to sound, i.e., they become functionally deaf. The same thing is happening to a cell that is overexposed to a ligand. To protect themselves, they produce less and less of the given receptor. In some cases this becomes an irreversible loss of the receptor from the cell. In the case of the μ-Opioid receptor, your body produces only small temporary doses of β-endorphin. With morphine, you have a large dose, and it is usually for a long duration. The longer the duration (over a week), the more likely you will have desensitization (down regulation) of the receptors.

Up Regulation: The reverse of down regulation is up regulation. If a cell is not getting enough signal, it will start building more receptors. In this case, there is a deficency in the amount of the ligand preset. The cell is compensating by building more receptors.

Both Down Regulation and Up Regulation are examples of Negative Feedback.
*NOTE: Receptors and Enzymes are both proteins. They both have a site where a ligand (receptor) or substrate (enzyme) can bind. As with receptors, we will see that enzymes have an affinity for their substrate, and like receptors, other chemicals can bind into the enzyme. In addition, like ligand-receptor, when a substrate binds into an enzyme, the enzyme will change shape.

Words of the Day: Paracrine & Autocrine

Prepare definitions for these two words and put them in your notes.

Daily Challenge

Below is a diagram of the Insulin Receptor and Signal Transduction. Review the image and information in your text, then write a forum post describing the nature of the Ligand and Receptor, and how a signal can change the physiology (active metabolic pathways) of a cell.
Effect of insulin on glucose uptake and metabolism.

Wednesday, September 19, 2012

Daily Newsletter: September 19, 2012 - Ligand & Receptor

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September 19, 2012 Ligand & Receptor


Ligands are chemical signals, and receptors are proteins. The receptor is folded so that it forms a binding space (active or binding site*) where the ligand can dock and bind. A common thought is that every receptor has a specific ligand, and that nothing else binds to the receptor. A lovely fiction.
To the right is an image of the μ-Opioid receptor (μ is the Greek Letter Mu). μ-Opioid ReceptorThis receptor is found in human neural tissue, and provides analgesic effects and feelings of euphoria. It can also cause respiratory depression and reduced GI motility. The main ligands for this receptor are enkephalins and β-endorphin. Yes, this receptor set has two potential ligands. It also has a list of agonistic and antagonistic compounds that can bind to the receptor.
When we speak of receptors and ligands, we talk about the affinity of the receptor for a particular ligand. Remember, we have folded the protein to create a 3-D shape. In the case of the μ-Opioid receptor, the folded protein has a notch where the ligand can slip in. This notch will have chemical properties complementary to the ligand. A high affinity would imply that the physical shape and chemical properties of the notch are a good match to a given ligand. In this case, beta-endorphin is a strong chemical and physical match to the binding site (notch) of the μ-Opioid receptor. Dynorphins, which are another type of neurotransmitter (ligand) in the brain, have a low affinity for the μ-Opioid receptor's binding site, meaning the shape and chemical properties are not a good match.
This sets up another aspect of receptors: agonists and antagonists. These terms represent chemical mimics of the natural ligand(s) of a given receptor. Agonists are chemical mimics that bind to a receptor and trigger a cellular response; in other words they work like the ligand. Antagonists on the other hand are chemical mimics that bind to a receptor and block a cellular response. Active and inactive μ-opioid receptors.In fact, antagonists can stay bound and prevent activation of the receptor. A well known agonist for μ-Opioid receptor is morphine. Morphine can bind to the μ-Opioid receptor and active the cellular response that leads to analgesic effects, feelings of euphoria and respiratory depression. To the left is an image depicting agonistic and antagonistic bindings possible with the μ-Opioid receptor. NOTE: The agonist relationship implies an activation of the cellular response, while the antagonistic relationship implies an inactivation of the cellular response.
Morphine is a powerful analgesic with many well known side effects. One of the most dangerous of these side effects is physical addiction and an increased tolerance for the drug (you need more and more to get the same effect over time). This provides a good example of another principle of receptors: Regulation.
Down Regulation: When a cell receives too much signal, it will begin to down regulate the receptors. This means that the cell stops producing the quantity of the specific receptor it usually makes. For membrane bound receptors, over time, as the membrane is repaired and refurbished (a constant dynamic process), the number of expressed receptors drops. The result is that the cell is less sensitive to the signal. Why does a cell do this? Think of it as a person being exposed to loud noises. If it happens once, for a short period of time, the body can compensate. What if the person is continuously exposed to the loud noise? Eventually they become less sensitive to sound, i.e., they become functionally deaf. The same thing is happening to a cell that is overexposed to a ligand. To protect themselves, they produce less and less of the given receptor. In some cases this becomes an irreversible loss of the receptor from the cell. In the case of the μ-Opioid receptor, your body produces only small temporary doses of β-endorphin. With morphine, you have a large dose, and it is usually for a long duration. The longer the duration (over a week), the more likely you will have desensitization (down regulation) of the receptors.
Up Regulation: The reverse of down regulation is up regulation. If a cell is not getting enough signal, it will start building more receptors. In this case, there is a deficency in the amount of the ligand preset. The cell is compensating by building more receptors.
Both Down Regulation and Up Regulation are examples of Negative Feedback.
*NOTE: Receptors and Enzymes are both proteins. They both have a site where a ligand (receptor) or substrate (enzyme) can bind. As with receptors, we will see that enzymes have an affinity for their substrate, and like receptors, other chemicals can bind into the enzyme. In addition, like ligand-receptor, when a substrate binds into an enzyme, the enzyme will change shape.

Administrative Note

Regarding the Milestone Paper and References, remember that you are to use scholarly sources for your references. Your Textbook is considered a scholarly source for this paper, as are the Daily Newsletters. Your own forum posts are not considered scholarly resources. Use your forum posts to help build your paper's structure, and any references used in making them. DO NOT cite your own forum posts.
Remember that citations are to use the American Medical Association format. If you are familiar with APA, that is an acceptable alternative.

Daily Challenge

Modern drugs tend to act as either agonists or antagonists to specific receptors in the body. This includes both medicinal and illegal drugs. Pick one of the following drugs and discuss the effect it has on its target receptor. Include the effect on the human body. (NOTE: You're not expected to write a massive paper on this; just show an understanding of the concepts presented here and an understanding of the drug you chose to write about).
  • Epinephrine
  • Metoprolol
  • Phentolamine
  • Guanfacine
  • Aripiprazole
  • Quetiapine XR
  • Zolpidem
  • Buspirone
LINK TO FORUM

Daily Newsletter: September 18, 2012 - Basics of Cell Communication

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September 18, 2012 Basics of Cell Communication


Cells must be able to sense their environment, and respond to environmental stimuli. Cells must have some mechanism to receive environmental signals, and process those signals into a response. All cells, prokaryotes and eukaryotes have this ability. Beyond just responding to the environment, we now know that cells, even bacteria and archaea, possess the ability to signal each other. In multicellular organisms, we will talk about the coordination of metabolism and growth using chemical signals. In humans, from the embryo stage til death, are cells are constantly talking to each other.
Signal reception occurs in all known organisms (from picking up environmental to cellular signals). For instance, in bacteria, we know of a signal phenomena known as Quorum Sensing. With this signal system, bacteria release chemicals as they grow which other individuals of the same species (and some times other species) pick up; when the concentration of the chemical reaches a critical point, cellular changes can be observed in the community. Basically, as the population increases, cells begin to change.
But how do cells pick up signals? Signal recognition begins with protein receptors. For a cell to pick up, or register, a signal, it must build a receptor for that signal. (IMPORTANT NOTE: a cell that lacks a receptor for signal X can not register signal X; they are deaf to the signal). This sets up another question: what is a signal?
Most of the signals we will talk about are chemical signals (aka, Ligands), meaning we have a chemical compound that will "fit" a receptor, activating it. There are other signals though: light can be a signal (photoreception), temperature (thermoreception), and even mechanical such as touch (mechanoreception). As mentioned, out discussions for this week will focus on chemical signal pathways.
By far, the most common type of signal system will involve chemicals. Hormones are chemical signals, neurotransmitters are chemical signals, even carbon dioxide is used as chemical signal in the human body. Because there are so many different chemical signals, we have a generic word for any compound that could bind and activate a receptor protein: Ligand. As a general word, ligand is used when we discuss the basic concepts of signal systems. (NOTE: In biology we have a number of GENERIC words that are used in discussing basic pathways or models. Ligand is one of those terms).
At their most basic, a chemical signal system (or pathway) will be comprised of a Ligand and a Receptor. When a ligand binds to a receptor (ligand-receptor complex), the receptor changes shape (conformation), which elicits a physiological response in the cell. Remember: The receptor is a protein, and when proteins change shape, they have an effect on the cell. So the basic signal system will be: Ligand binds to receptor, receptor changes shape, cellular response occurs. This is known as Signal Transduction.External reactions and internal reactions for signal transduction

Words of the Day: Paracrine & Autocrine

Prepare definitions for these two words and put them in your notes.

Daily Challenge

Below is a diagram of the Insulin Receptor and Signal Transduction. Review the image and information in your text, then write a forum post describing the nature of the Ligand and Receptor, and then the effects on the cell.
LINK TO FORUM
Effect of insulin on glucose uptake and metabolism.

Wednesday, September 12, 2012

Daily Newsletter: September 6, 2012 - Cell Recognition and Junctions

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Cell Recognition and Junctions


Cells must have the ability to sense their environment, and part of this is to be able to sense and recognize other cells. In a multicellular organism, individual cells must be able to recognize other cells that are part of the same organism, and must be able to anchor to them. Ultimately, mutlicellularity requires cells to have some system whereby cells are anchored to each other.

For example: Would you be able to move if your muscles were not somehow anchored to the bone? Would your skin be a defensive structure if it separated when you pulled it? Would your cardiovascular system be able to transport blood if the pressure would rip open the vessels?MCH I

In terms of recognition, we also have to have the ability to determine if something is part of the "SELF" or foreign. We will find that the ability for cells to recognize each other will be an important concept in many areas of biology, most notably, immunology. The Major Histocompatability Complex Class I and II are two protein complexes (quaternary proteins) that are part of our "self recognition" system. The figure to the right shows a cartoon of MHC I, which is found on every nucleated cell in the body. MHC will become important in discussions on immunology. For now, remember that it is a cellular marker in our self recognition system.
When we talk about cell signaling, we will come back to the concept of cellular receptors, many of which are membrane bound proteins. Their job will be to pick up chemical signals around the cell, and then cause a response inside of the cell.
A linked topic to cellular recognition is cellular junctions. Cellular Junctions are points where two cells are anchored together through proteins and glycoproteins. tight junctions There are numerous types of junctions, and some are specific to a group of organisms. The following three cellular junctions are associated with different animals, and provide a good foundation in the function of cellular junctions.
Tight Junctions - This is a cell junction found in vertabrates that holds cells tightly together, causing them to form a water proof layer. Water (and solutes) is not able to move through the intercellular (between cell) spaces. Instead solutions must pass through the cell (we regulate what moves through). This is important in organs like the stomach, intestines, and bladder.
Desmosomes - This type of cellular junction is designed to adhere cells together in a manner that is many times described as "spot-welding". DesmosomeKeratin plauges (waterproof structural protein) hold adhesion (anchoring) proteins. The adhsion holding plauges from different cells connect to form an incredibly strong and durable junction. The goal is to create a series of very strong connections between neighboring cells without creating a waterproof layer. These are found in areas of animal tissue that need to resist shearing or tearing forces.
Gap Junctions - The previous two types of junctions were designed to hold the cell membranes of two cells together. While this also occurs with the gap junction, the ultimate goal is different. With the gap junction, cells are connecting their cytoplasm, forming a continuous cytosol (cellular solution) between the neighboring cells. This is critical for rapid movement of ions between cells. This type of junction is used to communicate electrical changes (action potentials/nerve impuses) from one cell directly to another cell. The gap junction will come up again in discussions about action potential, neural function, and heart muscles.gap junctions


Daily Challenge: Junctions and Recognition

Explain why cellular junctions and cellular recognition are important to multicellular organisms. Use MHC and desmosomes as examples of cellular recognition proteins and junction proteins. Also discuss how we are using membrane bound proteins to make these recognition points and junctions. Do you think you are born with all the recognition points and junctions, or can you change them over time?

Link to Forum