Dr. Kiki (This Week in Science) interviews Dr. Frederic Theunissen. The two talk about his research on sound communication in social birds and hyenas
This is the first of a three-part series from "Sound Off!”, Carry the One Radio’s first live show, which took place at UCSF on May 29, 2014. Stay tuned for the other episodes!
More on the Theunissen Lab's research
Hosted by Ben Cohn, Austin Chou, and Kirsten Sanford (Dr. Kiki)
June 01, 2014
May 15, 2014
Massive issues: Brian Koberlein
Carry the One Ready collaborates with Dr. Brian Koberlein to bring you an audio production of his segment“Massive Issues”.
In this episode, Dr. Koberlein explains the different types of mass, and how their impact in the field of astrophysics.
Find more astrophysics on his blog: Brian Koberlein: One Universe at a Time
Sound Credits:
from freesounds.org:
Shaker (Quantity Mass) - kwazi
Bass60bpm (Passive Graviational Mass) - UncleSigmund
Space Orc Atmo (Hadron Collider segment) - stk13
Car_StartDriveAway (Time Dilation segment) - kbnevel
Tuning AM radio (Time Dilation segment) - CGEffex
NASA Shuttle Launch Countdown (Space segment) - JimiMod
shuttle launch (Space segment) - klangfabrik
Deep Space (Space segment) - alaupas
Low Creepy Hole (Black Hole Segment) - Robinhood76
In this episode, Dr. Koberlein explains the different types of mass, and how their impact in the field of astrophysics.
Find more astrophysics on his blog: Brian Koberlein: One Universe at a Time
Sound Credits:
from freesounds.org:
Shaker (Quantity Mass) - kwazi
Bass60bpm (Passive Graviational Mass) - UncleSigmund
Space Orc Atmo (Hadron Collider segment) - stk13
Car_StartDriveAway (Time Dilation segment) - kbnevel
Tuning AM radio (Time Dilation segment) - CGEffex
NASA Shuttle Launch Countdown (Space segment) - JimiMod
shuttle launch (Space segment) - klangfabrik
Deep Space (Space segment) - alaupas
Low Creepy Hole (Black Hole Segment) - Robinhood76
Hosted by Austin Chou
May 01, 2014
Carry the One Radio takes on Goggles Optional: Goggles Optional
Our science podcast friends at Stanford’s Goggles Optional have invited us to make a guest appearance on their show. Carry the One Radio team members Sama, Karuna, Liz, and Samantha joined Lisl, Trisha, Diego, and David from Goggles Optional. We had a head-to-head science-podcast-battle in the game categories Weakest Link, Team Real or Fake, and Google’s Optional (not a typo!). We also discussed evolution and fruit fly research.
Goggles Optional is a weekly science podcast based out of Stanford University. They cover a myriad of interesting science topics you won’t hear about in your typical feed, and they are a lot of fun to listen to. We highly recommend you check them out on their website.
Hosted by Osama Ahmed, Karuna Meda, Liz Unger, and Samantha Ancona Esselmann
Goggles Optional is a weekly science podcast based out of Stanford University. They cover a myriad of interesting science topics you won’t hear about in your typical feed, and they are a lot of fun to listen to. We highly recommend you check them out on their website.
Hosted by Osama Ahmed, Karuna Meda, Liz Unger, and Samantha Ancona Esselmann
April 15, 2014
Getting in Touch with Emotions: Yelena Kulik
This CTOR Short by our producer Yelena Kulik examines how well (or not) people can convey emotions such as anger, love, and sympathy via touch. We eavesdrop on participants in the Berkeley Science Review's “Touch Me!” Event, which took place at the 2013 Bay Area Science Festival. We try to identify "best practices" for communicating emotions and we explore what happens when communication goes awry.
April 01, 2014
Run! for your brain: Gary Westbrook
At one point in your middle school or high school biology class, you may have learned that the number of neurons in your brain is set at birth. For examples your skin cells are constantly dying and being renewed. Your brain cells, on the other hand, cannot be renewed once they die.
In the last decade, however, scientists have discovered that this is not entirely true. A part of the brain called the hippocampus is one of the few sites for adult neurogenesis (the production of neurons after birth). Here, neurons are constantly being produced throughout life and incorporated into the current network of neurons. Interestingly, this part of the brain is important for the formation of episodic memories. Our guest this week, Gary Westbrook, Senior Scientist and Co-Director at the Vollum Institute at Oregon Health and Science University, is working to understand this important process. His lab is interested in what causes the production of new neurons and the incorporation of these neurons into existing neuronal networks. They have found that simple exercise is enough to increase the production of new neurons in rodents. Tune in to hear more about this vital and fascinating process.
More on the Westbrook Lab's research
In the last decade, however, scientists have discovered that this is not entirely true. A part of the brain called the hippocampus is one of the few sites for adult neurogenesis (the production of neurons after birth). Here, neurons are constantly being produced throughout life and incorporated into the current network of neurons. Interestingly, this part of the brain is important for the formation of episodic memories. Our guest this week, Gary Westbrook, Senior Scientist and Co-Director at the Vollum Institute at Oregon Health and Science University, is working to understand this important process. His lab is interested in what causes the production of new neurons and the incorporation of these neurons into existing neuronal networks. They have found that simple exercise is enough to increase the production of new neurons in rodents. Tune in to hear more about this vital and fascinating process.
More on the Westbrook Lab's research
March 15, 2014
Chimeras are People Too: Kate Woronowicz
You may think that all of your cells contain the same genetic sequence, with half of your DNA coming from your mom and half coming from your dad, but that is not always true. This CTOR short will introduce you to chimeras, hybrid creatures with more that one genome, that can be man-made or naturally occurring.
Check out the CTOR interview with Dr. Rich Schneider who uses chimeras as a research tool.
CTOR also has a blog post about chimeras and genetic mosaics.
Hosted by Kate Woronowicz
Check out the CTOR interview with Dr. Rich Schneider who uses chimeras as a research tool.
CTOR also has a blog post about chimeras and genetic mosaics.
Hosted by Kate Woronowicz
March 01, 2014
How Neurons Talk to Each Other - The Synapse and More: Susan Voglmaier
Your thoughts, decisions, emotions, and actions – essentially everything you do—relies on the incredibly complex circuits within your brain. Within these circuits, neurons signal to each other through a process called synaptic neurotransmission, whereby chemicals released by one neuron bind to receptors that are located on a neighboring neuron. This extremely complicated process requires an orchestra of protein interactions and is tremendously quick, taking place over about two thousandths of a second.
Given the importance of synaptic neurotransmission in how circuits function, and the role of circuits in cognition, it is not surprising that defects in synaptic transmission are thought to underlie mental illnesses such as schizophrenia. Today, we talk to Dr. Susan Voglmaier, a practicing psychiatrist and Assistant Professor in the Department of Psychiatry at UCSF. Dr. Voglmaier’s lab is interested in the process by which proteins called transporters prepare neurotransmitters for neurotransmission. Her research provides new insights into the basic molecular machinery underlying synaptic transmission, what might go awry in psychiatric disease, and, potentially, future ways to treat these diseases.
More on the Voglmaier Lab's research
Hosted by Karuna Meda
Given the importance of synaptic neurotransmission in how circuits function, and the role of circuits in cognition, it is not surprising that defects in synaptic transmission are thought to underlie mental illnesses such as schizophrenia. Today, we talk to Dr. Susan Voglmaier, a practicing psychiatrist and Assistant Professor in the Department of Psychiatry at UCSF. Dr. Voglmaier’s lab is interested in the process by which proteins called transporters prepare neurotransmitters for neurotransmission. Her research provides new insights into the basic molecular machinery underlying synaptic transmission, what might go awry in psychiatric disease, and, potentially, future ways to treat these diseases.
More on the Voglmaier Lab's research
Hosted by Karuna Meda
February 15, 2014
The Cat Who Broke his Sweet Tooth
Carry the One Radio
Feb. 15, 2014 (Hosted by Sam Esselmann)
This is our first "CTOR Short"! Our producer Samantha explores why her cat Maverick cannot taste sweet foods.
February 01, 2014
Tapping into the Brain's Avoidance Centers: Garret Stuber
Traditionally, dopamine is known to transmit reward signals (food, sex, etc.) in the brain and promote behaviors that lead to that reward again. What you may not know, however, is that the area of the brain that releases dopamine, the ventral midbrain, also receives signals of aversion (things we find unpleasant or even dangerous) from a far-off brain region called the lateral habenula. These avoidance signals promote behaviors that lead us to avoid unpleasant or dangerous things in the world.
These brain circuits are necessary for survival and are the focus of Dr. Garret Stuber and his laboratory at the University of North Carolina - Chapel Hill. Using a tool known as optogenetics, Dr. Stuber can excite specific populations of neurons within mouse brains and observe their effects on behavior. For example, by stimulating the neurons in the lateral habenula that signal aversion, he can cause mice to avoid the location in which they received that stimulation. He is essentially creating an aversive stimulus by stimulating the neurons that would normally respond to harmful or unpleasant cues in the world. His work has important implications in addiction and psychiatric disorders
More on the Stuber Lab's research
Hosted by Osama Ahmed
These brain circuits are necessary for survival and are the focus of Dr. Garret Stuber and his laboratory at the University of North Carolina - Chapel Hill. Using a tool known as optogenetics, Dr. Stuber can excite specific populations of neurons within mouse brains and observe their effects on behavior. For example, by stimulating the neurons in the lateral habenula that signal aversion, he can cause mice to avoid the location in which they received that stimulation. He is essentially creating an aversive stimulus by stimulating the neurons that would normally respond to harmful or unpleasant cues in the world. His work has important implications in addiction and psychiatric disorders
More on the Stuber Lab's research
January 01, 2014
Speaking with the Lizard Man: Eric Pianka
This month, in collaboration with the Age of Discovery podcast, we talk to Eric Pianka, an American ecologist known for his work on the community ecology of desert lizards and his classic textbook, Evolutionary Ecology. Dr. Pianka discusses how his interests in biology and reptiles were sparked in elementary school, and the experiences and relationships that have propelled his scientific career.
This program was hosted by Adrian Smith, an ant biologist at the University of Illinois. Adrian runs his own biology podcast called the Age of Discovery.
More on the Pianka Lab's research
This program was hosted by Adrian Smith, an ant biologist at the University of Illinois. Adrian runs his own biology podcast called the Age of Discovery.
More on the Pianka Lab's research
December 01, 2013
Pulling DNA: Sophie Dumont
When a cell divides (called a parent cell), it provides complete copy of genes to each new cell that is formed (called daughter cells). This complicated process occurs repeatedly to accomplish an organism's development, repair, and replenishment. To reliably split the DNA correctly requires an orchestra of microscopic interactions among many molecules. While we know many of the molecules involved, scientists still know relatively little about the mechanical interactions that underlie this process. Our guest this month, Sophie Dumont, Assistant Professor in the Department of Cell and Tissue Biology at UCSF, hopes to understand these interactions. Specifically, her lab is working to understand how the chromosome (an organized structure of DNA) is divided and segregated into separate daughter cells. Her work has implications in various developmental disorders and cancer, which can result from errors in cell division. At the end of our talk she discusses the what it’s like to be a woman in science and gives advice to listeners interested in a career in science.
Music in this Episode: Lacrymae - Melodium, Bird’s Lament – Moon Dog, and Push and Pull – Rufus Thomas
More on the Dumont Lab's research
Hosted by Karuna Meda
Music in this Episode: Lacrymae - Melodium, Bird’s Lament – Moon Dog, and Push and Pull – Rufus Thomas
More on the Dumont Lab's research
Hosted by Karuna Meda
October 21, 2013
Exploring the Zombie Brain: Brad Voytek
No, zombies are not real (at least not yet), but that does not mean we can’t enjoy analyzing their mental capacities. This is the work of Brad Voytek, scientist at UCSF and our guest this month on Carry the One Radio. When Brad isn’t busy with his scientific research mapping the prefrontal cortex, the part of the brain that makes us human, he “studies” the effects of zombification on the brain. He uses this work as a fun way to teach neuroscience. Listen as Brad describes the zombie brain and how it can help us teach how the human brain might work.
More on the Voytek Lab's research
Hosted by Sama Ahmed.
More on the Voytek Lab's research
Hosted by Sama Ahmed.
October 01, 2013
The big role of microRNAs in the immune system: Mark Ansel
The key to understanding our immune system might lie in understanding microRNAs. These are tiny strings of nucleotides (the same molecules that makes DNA) that influence how and which genes are expressed. This month we talk with Dr. Mark Ansel, an Assistant Professor in the UCSF Department of Microbiology & Immunology, about his work on these recently discovered molecules and their role in helping the body protect itself.
Within the cell, most RNA is produced from our DNA (genes) and translated to make proteins that help the cell function. microRNAs are produced from DNA but don’t make proteins. Instead, microRNAs ensure that the right genes are translated under the right conditions. microRNAs work in the immune system by helping a type of white blood cell, known as a T-cell, which regulate the production of antibodies that bind and destroy cellular invaders. The set of microRNAs that Dr. Ansel and his lab studies regulate genes that let T-cells recognize their environment and start the production of the correct antibodies. He has found that without these microRNAs, T-cells cannot properly mediate immunity. Dr. Ansel's work has important implications in understanding the immune system and what possibly goes wrong in diseases like HIV and AIDS. At the end of our interview, he talks about what motivates him most in science—the thrill of discovery.
Music: Kevin MacLeod: J. S. Bach: Prelude in C - BWV 846
More on the Ansel Lab's research
Hosted by Samantha Ancona Esselmann
Within the cell, most RNA is produced from our DNA (genes) and translated to make proteins that help the cell function. microRNAs are produced from DNA but don’t make proteins. Instead, microRNAs ensure that the right genes are translated under the right conditions. microRNAs work in the immune system by helping a type of white blood cell, known as a T-cell, which regulate the production of antibodies that bind and destroy cellular invaders. The set of microRNAs that Dr. Ansel and his lab studies regulate genes that let T-cells recognize their environment and start the production of the correct antibodies. He has found that without these microRNAs, T-cells cannot properly mediate immunity. Dr. Ansel's work has important implications in understanding the immune system and what possibly goes wrong in diseases like HIV and AIDS. At the end of our interview, he talks about what motivates him most in science—the thrill of discovery.
More on the Ansel Lab's research
Hosted by Samantha Ancona Esselmann
September 01, 2013
How to become a heart cell: Benoit Bruneau
Gladstone Institute for Cardiovascular Disease
Sept. 1, 2013 (Hosted by Osama Ahmed)
Our bodies are made up of around 200 different cell types with very different structures and functions. Paradoxically, every cell contains the same genetic material. During development, proteins called transcription factors turn specific genes on and off. This can force a cell to develop into a brain cell rather than a skin cell, for example. But, when the right genes fail to turn on or when the wrong genes are expressed, developmental defects can occur.
Our guest this month, Dr. Benoit Bruneau, a Senior Investigator at the Gladstone Institute for Cardiovascular Disease, wants to know what makes a heart cell a heart cell. His lab is interested in how these different regulators interact, which factors are required for proper heart development, and which are altered in disease. This work answers important questions about how genes direct development, and it has potential applications for future therapies for heart disease.
More on the Bruneau Lab's research
Sept. 1, 2013 (Hosted by Osama Ahmed)
Our bodies are made up of around 200 different cell types with very different structures and functions. Paradoxically, every cell contains the same genetic material. During development, proteins called transcription factors turn specific genes on and off. This can force a cell to develop into a brain cell rather than a skin cell, for example. But, when the right genes fail to turn on or when the wrong genes are expressed, developmental defects can occur.
Our guest this month, Dr. Benoit Bruneau, a Senior Investigator at the Gladstone Institute for Cardiovascular Disease, wants to know what makes a heart cell a heart cell. His lab is interested in how these different regulators interact, which factors are required for proper heart development, and which are altered in disease. This work answers important questions about how genes direct development, and it has potential applications for future therapies for heart disease.
More on the Bruneau Lab's research
August 15, 2013
The surprising health benefits of Botox (Part 2): Edwin Chapman
In the second part of our talk with Dr. Chapman, we discuss the positive effects that botulinum toxin A, otherwise known as Botox, can have in combating a number of medical conditions. You will be surprised by how often Botox is used for non-cosmetic procedures. It is prescribed for carpal tunnel syndrome, stuttering, excess sweating, cervical dystonia, and other debilitating conditions. Botulinum toxin A works by cleaving proteins important for cell communication (as discussed in Part 1), but exactly how it acts through the nervous system is unclear. Dr. Chapman’s lab has discovered that neurotoxins such as botulinum toxin A can be absorbed by neurons through vesicles at one end of the cell and be transported backward to the neurons connected to it on the other end of the cell, affecting specific proteins in long chains of cells. His research provides important insights into the mechanism of how this useful toxin works.
More on the Chapman Lab's research
Hosted by Sama Ahmed and Sam Ancona Esselmann
August 01, 2013
The cell's fusion machinery (Part 1) : Edwin Chapman
This month, in our first two-part episode, we talk about vesicle fusion with Dr. Edwin Chapman, a Howard Hughes investigator at the University of Wisconsin-Madison. Vesicles are small balloons within the cell that can carry a variety of material ranging from proteins to cellular waste. They are also important message-delivery machines that allow neurons to communicate with each other. Through an extremely fast and complicated process known as synaptic vesicle exocytosis, vesicles containing neurotransmitters fuse with the neuron's membrane, releasing packets of neurotransmitter that will bind to the receptors on a neighboring neuron. This process is the basis of nearly all neuron-to-neuron communication and, consequently, underlies our thoughts and behavior. Using different techniques, Dr. Chapman hopes to provide a better understanding of the structure, function, and dynamics of this poorly understood but fundamental process.
More on the Chapman Lab's research
More information on vesicle exocytosis
Producer: Osama Ahmed, Samantha Ancona Esselmann
July 01, 2013
Evolution of the deer mouse: Hopi Hoekstra
The way an organism looks and behaves is influenced by the genes it inherits. Through a process known as natural selection, genetic traits that are helpful for survival are passed to future generations, while traits that are less useful are selected out. For example, a fish that swims faster than another is more likely to escape from predators, reproduce, and pass down various inherited traits than its slower counterparts.
Hopi Hoekstra, a professor in the Department of Organismic and Evolutionary Biology at Harvard, and our guest this month on CTOR, is studying a longstanding question in biology: how do genes contribute to evolutionary adaptations? Listen as Dr. Hoekstra talks about how her lab uses the deer mouse to study the genetic basis of coat color, and burrowing behaviors. In addition, her research has important connections to human genetics and behavior. The genes her lab studies that determine pigmentation in the deer mouse are the same genes that determine hair color and skin cancer susceptibility in humans. And while humans obviously don’t burrow, the genes that affect burrowing and exploratory behaviors in the deer mouse could affect motivation and anxiety in humans. At the end of our talk, Dr. Hoekstra’s discusses her interest in political science before switching to a career in science.
This interview is part of an ongoing collaboration between Carry the One Radio and the Women in Life Sciences (WILS) group at UCSF.
More on the Hoekstra Lab's research
Women in Life Sciences (WILS)
Hosted by Karuna Meda
Hopi Hoekstra, a professor in the Department of Organismic and Evolutionary Biology at Harvard, and our guest this month on CTOR, is studying a longstanding question in biology: how do genes contribute to evolutionary adaptations? Listen as Dr. Hoekstra talks about how her lab uses the deer mouse to study the genetic basis of coat color, and burrowing behaviors. In addition, her research has important connections to human genetics and behavior. The genes her lab studies that determine pigmentation in the deer mouse are the same genes that determine hair color and skin cancer susceptibility in humans. And while humans obviously don’t burrow, the genes that affect burrowing and exploratory behaviors in the deer mouse could affect motivation and anxiety in humans. At the end of our talk, Dr. Hoekstra’s discusses her interest in political science before switching to a career in science.
This interview is part of an ongoing collaboration between Carry the One Radio and the Women in Life Sciences (WILS) group at UCSF.
More on the Hoekstra Lab's research
Women in Life Sciences (WILS)
June 01, 2013
How the bat brain knows its place: Michael Yartsev
The ability of animals to navigate through the world is essential for survival and has been studied by scientists for over 40 years. Scientists have identified neurons called “place cells” that reside in a part of the brain called the hippocampus. Individual place cells are active only when the animal is in a particular location in space, and populations of place cells work together to create an internal representation of the environment.
Up until now, experiments involving the hippocampus and place cells have been conducted in two-dimensional settings, often with rats running through a flat maze. Our guest this month, Dr. Michael Yartsev, a fellow at The Princeton Neuroscience Institute and previously the Weizmann Institute, is interested in how the 3D world is perceived in the brain. He hopes to figure this out by recording activity from place cells in the brains of flying bats. Listen as Dr. Yartsev describes this unique system to study an old question.
Hosted by Osama Ahmed, Karuna Meda
Up until now, experiments involving the hippocampus and place cells have been conducted in two-dimensional settings, often with rats running through a flat maze. Our guest this month, Dr. Michael Yartsev, a fellow at The Princeton Neuroscience Institute and previously the Weizmann Institute, is interested in how the 3D world is perceived in the brain. He hopes to figure this out by recording activity from place cells in the brains of flying bats. Listen as Dr. Yartsev describes this unique system to study an old question.
Hosted by Osama Ahmed, Karuna Meda
May 01, 2013
Our protective microbiome: Susan Lynch
Believe it or not, we are made up of more microbes than human cells. In fact, for every human cell that makes up our body, there are nine times more bacteria, viruses, or fungi living on our skin, gut, or lungs. However, most of these microbes are not the kind that will make us sick. Most are harmless and, in some cases, even protective against diseases like Crohn’s disease and chronic sinusitis.
The function of many of these microbes is beginning to be understood by scientists like Dr. Susan Lynch, an associate professor of medicine at the University of California - San Francisco and our guest this month on Carry the One Radio. Listen as Dr. Lynch describes her work on the microbiome, how it develops, and its role in health and disease.
This episode is also part of our ongoing collaboration with our friends over at Youreka Science. They make science make sense, and they have covered one of Dr. Lynch's recent publications on the microbiome.
More on the Lynch Lab's research
An animated guide to some of Susan Lynch's work at Youreka Science
The function of many of these microbes is beginning to be understood by scientists like Dr. Susan Lynch, an associate professor of medicine at the University of California - San Francisco and our guest this month on Carry the One Radio. Listen as Dr. Lynch describes her work on the microbiome, how it develops, and its role in health and disease.
This episode is also part of our ongoing collaboration with our friends over at Youreka Science. They make science make sense, and they have covered one of Dr. Lynch's recent publications on the microbiome.
More on the Lynch Lab's research
An animated guide to some of Susan Lynch's work at Youreka Science
Hosted by Sama Ahmed
April 01, 2013
Exploring the Evolution and Development of the Vertebrate Skeleton: Rich Schneider
If you were asked to imagine how scientists study the way bones develop and grow, the last thing you might picture would be a quail-duck chimera. That is, unless you're Richard Schneider, associate professor in the department of orthopedic surgery at UCSF and our guest this month on Carry the One Radio.
Dr. Schneider and his lab have developed a system where stem cells from quail embryos are transplanted into duck embryos, and vice versa. The precursor cells from different species differ in growth speed and the structure of the bone they eventually create. His lab is interested in how these species-specific, developing cells interact with each other when they first meet. His findings may eventually lead to potential therapies for bone repair and regeneration.
More on the Schneider Lab's research
Host: Alex Mendelssohn
Dr. Schneider and his lab have developed a system where stem cells from quail embryos are transplanted into duck embryos, and vice versa. The precursor cells from different species differ in growth speed and the structure of the bone they eventually create. His lab is interested in how these species-specific, developing cells interact with each other when they first meet. His findings may eventually lead to potential therapies for bone repair and regeneration.
More on the Schneider Lab's research
Host: Alex Mendelssohn
March 01, 2013
Neural circuits and motivational processes underlying hunger: Scott Sternson
This month on Carry the One Radio, we talk to Scott Sternson, a chemistry Ph.D-turned neuroscientist and scientist at Janelia Farms. Dr. Sternson is interested in what happens when we are hungry. He describes how a subset of neurons in a brain structure called the hypothalamus senses when the body is low on energy and motivates us to find food. By manipulating the electrical activity of specific neural populations and determining their effect on behavior, Dr. Sternson and his lab can map the function of the hypothalamus circuit. At the end of our talk, he discusses the importance of being self-critical of ones own ideas in science.
More on the Sternson Lab's research
Hosted by Karuna Meda
More on the Sternson Lab's research
Hosted by Karuna Meda
February 01, 2013
Towards personalized cancer treatments: Eric Collisson and Barry Taylor

This month on Carry the One Radio we talk with two scientists who are developing new strategies to treat cancer. Dr. Eric Collisson, a medical oncologist, and Dr. Barry Taylor, a computation biologist, have teamed up to identify and understand the complex signaling world that leads to cancer. Because of the complexity of these signaling pathways, two patients diagnosed with the same disease might need very different treatments. But by understanding the common pathways, Eric and Barry hope to eventually develop personalized therapies for cancer patients. Towards the end of our talk, they discuss the number one motivator for having a career in science.
More on the Collisson Lab's research More on the Taylor Lab's research
January 01, 2013
How does the brain motivate us to move?: Anatol Kreitzer
Our guest this month is Anatol Kreitzer, assistant professor of physiology and neurology at UCSF and a scientist at the UCSF-affiliated Gladstone Institutes. Dr. Kreitzer has made pioneering discoveries in the study of the neural circuits that control movement. His lab is interested in the function of the basal ganglia, a structure deep in the brain that controls movement, motivation, and action selection. Dysfunction of the basal ganglia can lead to movement disorders such as Parkinson’s disease and Huntington’s disease where patients have difficulty either initiating or controlling movements.
To understand how the basal ganglia works, the Kreitzer lab records electrical activity from neurons within the basal ganglia and determines how it relates to movement in behaving mice. They can also control this activity using an emerging technique known as optogenetics. By delivering genes coding for light-sensitive proteins into specific neurons, scientists in the lab can manipulate the electrical activity of certain neurons to see how movement is affected. This technique is being used to study the cells in the basal ganglia that guide our actions based on previous experience. Dr. Kreitzer’s work has provided significant insights into how the basal ganglia works and may eventually lead to potential cures for movement disorders.
More on the Kreitzer Lab's research
Hosted by Osama Ahmed
To understand how the basal ganglia works, the Kreitzer lab records electrical activity from neurons within the basal ganglia and determines how it relates to movement in behaving mice. They can also control this activity using an emerging technique known as optogenetics. By delivering genes coding for light-sensitive proteins into specific neurons, scientists in the lab can manipulate the electrical activity of certain neurons to see how movement is affected. This technique is being used to study the cells in the basal ganglia that guide our actions based on previous experience. Dr. Kreitzer’s work has provided significant insights into how the basal ganglia works and may eventually lead to potential cures for movement disorders.
More on the Kreitzer Lab's research
Hosted by Osama Ahmed
December 01, 2012
How the Brain Stays Stable in a Changing World: Graeme Davis
The human brain is the most complex structure in the body. It consists of about 100 billion neurons that make around 100 trillion synapses. These connections are constantly changing and the brain must maintain a stable level of electrical activity as it changes. If this balance is disrupted, conditions like epilepsy and schizophrenia can arise. How neurons achieve this feat is still a scientific mystery.
Our guest this month is Dr. Graeme Davis, professor in the department of biophysics at UC San Francisco. Dr. Davis hopes to solve the question of how the brain remains stable as it changes. His lab uses fly genetics to determine important genes involved in maintaining stable neural activity. Listen as Dr. Davis describes how one of these genes, dysbindin, is involved in stabilizing neural function and may have important implications in schizophrenia.
Our guest this month is Dr. Graeme Davis, professor in the department of biophysics at UC San Francisco. Dr. Davis hopes to solve the question of how the brain remains stable as it changes. His lab uses fly genetics to determine important genes involved in maintaining stable neural activity. Listen as Dr. Davis describes how one of these genes, dysbindin, is involved in stabilizing neural function and may have important implications in schizophrenia.
October 31, 2012
Energy balance in a changing environment: Kaveh Ashrafi
The ability to maintain energy balance in a changing environment is essential for survival. The brain helps maintain this balance by sending signals that regulate food intake as well as fat storage. Abnormal metabolism has been associated with cardiovascular disease, type II diabetes, and even some neurodegenerative disease. However, the biology behind this link is not completely understood.
Our guest this month, Dr. Kaveh Ashrafi, an associate professor in the department of physiology at UCSF, hopes to tackle this important question. His lab uses microscopic nematodes to understand the genes and neural circuits that control fat and feeding regulation. By taking advantage of the simplicity of the nematode nervous system, scientists in Dr. Ashrafi’s lab can determine the precise role of these genes and how they control feeding behavior. His lab also studies how different chemicals in the environment can regulate metabolism and increase fat levels.
More on the Ashrafi Lab's research
Hosted by Karuna Meda
Our guest this month, Dr. Kaveh Ashrafi, an associate professor in the department of physiology at UCSF, hopes to tackle this important question. His lab uses microscopic nematodes to understand the genes and neural circuits that control fat and feeding regulation. By taking advantage of the simplicity of the nematode nervous system, scientists in Dr. Ashrafi’s lab can determine the precise role of these genes and how they control feeding behavior. His lab also studies how different chemicals in the environment can regulate metabolism and increase fat levels.
More on the Ashrafi Lab's research
Hosted by Karuna Meda
September 30, 2012
The neighborhood of cells in breast cancer: Zena Werb
University of California - San Francisco
Sept. 30, 2012 (Hosted by Karuna Meda)
Breast cancer affects one in eight women and is the seventh leading cause of death for women. Susceptibility to breast cancer is increased around the time of puberty when the breasts develop. More research into how the breasts normally develop and what causes normal cells to become cancer cells is still needed.
Our guest this month is Zena Werb, a professor of anatomy at the UCSF Family Comprehensive Cancer Center. Dr. Werb’s lab studies how a normal cell develops and the role of the cell’s “neighborhood”, the surrounding tissue that is necessary for support and proper development. Looking at how these cells interact in their microenvironment is important for understanding cancer metastasis and may potentially lead to treatments for this disease.
More on the Werb Lab's research
Sept. 30, 2012 (Hosted by Karuna Meda)
Breast cancer affects one in eight women and is the seventh leading cause of death for women. Susceptibility to breast cancer is increased around the time of puberty when the breasts develop. More research into how the breasts normally develop and what causes normal cells to become cancer cells is still needed.
Our guest this month is Zena Werb, a professor of anatomy at the UCSF Family Comprehensive Cancer Center. Dr. Werb’s lab studies how a normal cell develops and the role of the cell’s “neighborhood”, the surrounding tissue that is necessary for support and proper development. Looking at how these cells interact in their microenvironment is important for understanding cancer metastasis and may potentially lead to treatments for this disease.
More on the Werb Lab's research
September 05, 2012
Treating Chagas' Disease: Jim McKerrow
Our guest this month is Dr. James McKerrow, a professor and chair in experimental pathology at UCSF. Dr. McKerrow and his team work to develop new drugs for neglected tropical diseases; diseases that affect low-income regions and consequently receive less attention from pharmaceutical companies. Dr. McKerrow takes us through the process of developing new treatments against these devastating infections.
More on the McKerrow Lab's research
Hosted by Alex Mendelsohn
More on the McKerrow Lab's research
Hosted by Alex Mendelsohn
July 31, 2012
How the brain responds to pheromones: Lisa Stowers
Our brains are responsible for helping us understand and move around in the world. What we perceive through our senses is transformed into electrical activity in our brains, and that activity determines how we act and respond to the environment. Yet, scientists are unclear about how brain cells carry out this transformation.
Our guest this month is Dr. Lisa Stowers from the Scripps Research Institute. Her lab uses mice to study how chemical signals known as pheromones activate particular groups of neurons, and how this activity produces instinctive behaviors of fear, attraction, and aggression. By studying this system, Dr. Stowers hopes to shed new light on how the brain processes senses and generates behavior.
More on the Stowers Lab's research
Producer: Sama Ahmed
Our guest this month is Dr. Lisa Stowers from the Scripps Research Institute. Her lab uses mice to study how chemical signals known as pheromones activate particular groups of neurons, and how this activity produces instinctive behaviors of fear, attraction, and aggression. By studying this system, Dr. Stowers hopes to shed new light on how the brain processes senses and generates behavior.
More on the Stowers Lab's research
Producer: Sama Ahmed
June 30, 2012
The Social Worm: Cori Bargmann
What controls the way we behave? Our guest this week, Dr. Cornelia Bargmann, hopes to answer this complicated question. She explains how our biology, our genes, and the environment we live in can affect the way we behave. She is especially interested in understanding social behaviors, or how animals interact with each other. In her research, she uses the humble worm, known as c. elegans, to study the underlying biology that can switch an individual from being a loner to a party animal, and vice versa.
Cori is a professor at The Rockefeller University and an investigator of the Howard Hughes Medical Institute. She has recently been featured in the Charlie Rose Brain Series and The New York Times.
For an additional teaching resource, check out the lesson plan we created to accompany this episode.
More on the Bargmann Lab's research
Hosted by Osama Ahmed
Cori is a professor at The Rockefeller University and an investigator of the Howard Hughes Medical Institute. She has recently been featured in the Charlie Rose Brain Series and The New York Times.
For an additional teaching resource, check out the lesson plan we created to accompany this episode.
More on the Bargmann Lab's research
Hosted by Osama Ahmed
June 03, 2012
Regenerating the heart: Deepak Srivastava
Heart disease is the number one cause of death in men and women, and congenital heart defects affect about 1 out of every 100 babies worldwide. Our guest, Dr. Deepak Srivastava, a professor of pediatrics and the director of the Gladstone Institute of Cardiovascular Disease at UCSF, is focused on changing that statistic.
By studying how stem cells in the developing embryo transform into heart cells, Dr. Srivastava hopes to find out what causes children to be born with heart abnormalities. Additionally, by understanding how nature develops healthy heart cells, research in the Srivastava lab may soon lead to new therapies for patients with heart disease. His lab has already found a way to guide non-muscle cells in the heart into fully functional, beating muscle cells in mice. He hopes to move these strategies into clinical human studies in the future.
At the end of our talk, Dr. Srivastava gives his most important advice for an aspiring, young scientist.
More on the Srivastava Lab's research
Hosted by Karuna Meda
By studying how stem cells in the developing embryo transform into heart cells, Dr. Srivastava hopes to find out what causes children to be born with heart abnormalities. Additionally, by understanding how nature develops healthy heart cells, research in the Srivastava lab may soon lead to new therapies for patients with heart disease. His lab has already found a way to guide non-muscle cells in the heart into fully functional, beating muscle cells in mice. He hopes to move these strategies into clinical human studies in the future.
At the end of our talk, Dr. Srivastava gives his most important advice for an aspiring, young scientist.
More on the Srivastava Lab's research
Hosted by Karuna Meda
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