Showing posts with label DBS. Show all posts
Showing posts with label DBS. Show all posts

Monday, December 3, 2018

Deep Brain Stimulation of Orbitofrontal Cortex Relieves Depression

reposted from


https://www.the-scientist.com/news-opinion/deep-brain-stimulation-of-orbitofrontal-cortex-relieves-depression-65159?utm_campaign=TS_DAILY%20NEWSLETTER_2018&utm_source=hs_email&utm_medium=email&utm_content=67993878&_hsenc=p2ANqtz-_B0O1IEOhqqMWvrfu4g62thFuKMYHXcjsSxfFbVbou7PnOoCm9bhpuadcisV8kJlEY5syh1OUereLXjO6OYUZ60a_cAA&_hsmi=67993878

Deep Brain Stimulation of Orbitofrontal Cortex Relieves Depression

The result of a study among patients with epilepsy strengthens the case for the importance of this brain region in determining mood.

Dec 3, 2018
ASHLEY P. TAYLOR
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Orbitofrontal cortex in green; cingulate, red; insula, purple; hippocampus, yellow; amygdala, cyan
BEN SPEIDEL, CHANG LAB, UCSF
Electrically stimulating the lateral orbitofrontal cortex, a brain area behind the eyes, improves the moods of people with depression, according to a study published yesterday (November 29) in Current Biology
The technique used by the researchers, led by Edward Chang of the University of California, San Francisco, is called deep brain stimulation (DBS), in which surgically implanted electrodes send electrical pulses to particular areas of the brain. The approach is already in use as a treatment for movement disorders such as Parkinson’s disease and tremors. But results on its ability to treat depression have been mixed, as NPR reports.
The researchers worked with 25 epilepsy patients who already had electrodes implanted into their brains as part of their treatments. Many of the study participants also had signs of depression as evaluated by mood tests the researchers administered, Science News reports. The investigators tried stimulating many areas of the brain, and they found that jolts to the lateral orbitofrontal cortex made patients with signs of depression—but not others who didn’t have symptoms—feel better right away.
“Wow, I feel a lot better. . . . What did you guys do?” study coauthor Kristin Sellers recalls a patient exclaiming after receiving the stimulation, she tells NPR
“Only the people who had symptoms [of depression] to start with improved their mood, which suggests that perhaps the effect of what we’re doing is to normalize activity that starts off abnormal,” adds another coauthor, Vikram Rao.
The effects wore off soon after the stimulation ended, NPR reports.
The latest study offers “more evidence that [DBS] is something that is real and will work for depression,” Al Fenoy, an associate professor of neurosurgery at the University of Texas Health Science Center at Houston Medical School, who was not involved in the work, tells NPR. Fenoy has found that stimulating a different region, which makes connections with the OFC, can also alleviate depression.
Chang’s team hopes to develop a device that could monitor the OFC and stimulate it as needed to regulate mood, according to a statement.  

Saturday, January 14, 2017

Just reading a cool review paper on DBS

Just reading a cool review paper on DBS

Some quick points is that there are over 100,000 people that have had the DBS surgery completed.

Some targets:

  1. GPi - historically the first target
  2. STN first in 1994 but may have neurocognitive and psychiatric side effects so shifting back to GPi
  3. sCing - MDD
  4. nucleus basalis of Meynert (NBM) - relieve cognitive deficits in a case study of STN-induced dementia
  5. fornix - early Alzheimer's


Monday, December 5, 2016

CRISPR Pioneers Honored :: Influential researchers receive the 2015 Breakthrough Prizes in Life Sciences.

reposted from http://www.the-scientist.com/?articles.view/articleNo/41455/title/CRISPR-Pioneers-Honored/



CRISPR Pioneers Honored

Influential researchers receive the 2015 Breakthrough Prizes in Life Sciences.
By  | November 18, 2014
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Emmanuelle Charpentier, Jennifer Doudna, and Victor Ambros, recipients of 2015 Breakthrough Prizes in Life Sciences.BREAKTHROUGH PRIZE
The 2015 Breakthrough Prizes in Life Sciences recognized six scientists for their achievements in gene editing, gene regulation, and Parkinson’s therapy. The $3 million prizes are sponsored by a group of tech billionaires, including Russian entrepreneur Yuri Milner, Mark Zuckerberg of Facebook, and Sergey Brin of Google. The prizes were awarded earlier this month (November 9) at a televised ceremony in Mountain View, California.
Emmanuelle Charpentier of the Helmholtz Center for Infection Research in Germany and Umeå University in Sweden, and Jennifer Doudna of the University of California, Berkeley, were honored for discovering the details of CRISPR, a bacterial antiviral system that has been widely adapted for genetic engineering.
Doudna was “thrilled and shocked and very excited” to learn of the award, she told The Guardian. “We published our work in 2012 and none of us could have predicted how transformative it has been.” The CRISPR-Cas9 system has already proven to be a powerful research tool, and also shows promise as a method for gene therapy to treat cystic fibrosis and blood disorders.
Other award recipients included neurosurgeon Alim Louis Benabid of Joseph Fourier University in France, for his work on deep-brain stimulation as a therapy for Parkinson’s disease, and Victor Ambros of the University of Massachusetts Medical School and Gary Ruvkun of Harvard Medical School for their research on gene regulation by microRNAs.
C. David Allis of The Rockefeller University in New York was recognized for his work on epigenetics—specifically, covalent modifications of histone proteins with broad effects on gene regulation and disease.
“When you decide to pursue a very basic problem in life sciences like gene regulation, you never expect to receive a prize as remarkable as the Breakthrough Prize. It shows how wonderful a career in science is,” Allis told The Guardian

Tuning the Brain

reposted from



Tuning the Brain

Deep-brain stimulation is allowing neurosurgeons to adjust the neural activity in specific brain regions to treat thousands of patients with myriad neurological disorders.
By  | October 28, 2013
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DEEP-BRAIN STIMULATION (DBS): Electrodes implanted into targeted brain regions deliver electrical stimulation to either excite or inhibit activity in a neural circuit of interest. DBS patients are also fitted with battery-powered implanted pulse generators, typically placed subcutaneously below the clavicle and connected to the electrodes via insulated wires. These pulse generators can deliver electrical stimulation from 20 to 200 times per second.© THOM GRAVESThe world’s first neurosurgeries took place about 7,000 years ago in South America with the boring of holes into hapless patients’ skulls, a process known as trephination. Practitioners of the day believed the source of neurologic and psychiatric disease to be evil spirits inhabiting the brain, and the way to treat such disorders, they reasoned, was to make holes in the skull and let the evil spirits escape. The procedure was surprisingly common, with as many as 1 percent of skulls at some archaeological sites having these holes.
Today, neurosurgeons are still drilling into the brains of patients suffering from neurologic and psychiatric disorders, but rather than letting evil spirits escape, doctors are putting things in—inserting electrical probes to tame rogue neurons or to stimulate brain regions that are underperforming. This procedure, known as deep-brain stimulation (DBS), was first tried for the treatment of pain in the 1960s, and has since been attempted in patients with numerous other neurologic disorders. DBS is currently approved in the U.S. or Europe for the treatment of essential tremor, Parkinson’s disease, dystonia (a motor disorder that causes extreme twisting and repetitive motions), epilepsy, and obsessive-compulsive disorder (OCD). The therapy is currently in clinical trials for depression, Alzheimer’s disease, addiction, and more.
Each of these disorders is a consequence of pathological activity within a specific brain circuit. In Parkinson’s disease and dystonia, neurons in the motor circuits misfire, causing aberrant movements of the limbs and torso. Malfunction in circuits that regulate mood can lead to depression. Impairment of the activity in circuits that control memory and cognitive function is characteristic of Alzheimer’s disease. DBS targets the precise location of these malfunctioning neuronal cell bodies or their projections, and either stimulates the region to drive underperforming circuits, or shuts down overactive or misfiring neurons. The technique has become so advanced that it can target any region of the brain.
Deep-brain stimulation represents a scientific renaissance in systems neuroscience, allowing the func­tional mapping of previously uncharted neurons.
More than 100,000 patients worldwide have received DBS, mostly to treat Parkinson’s disease, according to Medtronic, a prominent supplier of DBS devices. The implantation of DBS devices is also aiding in the study of the basic mechanisms underlying various neurological and psychiatric disorders. During the electrode implantation process, which is often completed using only local anesthesia so patients remain awake and responsive, surgeons conduct physiological mapping to identify the optimal brain target. At the same time researchers can also record activity from individual neurons or small neuronal populations—both at rest and in response to different motor, emotional, or cognitive tasks. Such medically acquired information is shedding light on the circuitry of neurological and psychiatric conditions, revealing pathways involved in movement, pain, reward, decision making, and plasticity.
By observing patients’ behavioral changes following the stimulation or inhibition of specific neural circuits, DBS is helping to explain what goes wrong in the brain to cause symptoms, as well as helping to reveal important commonalities between diverse disorders. The research is also bringing together the previously disparate fields of neurology and psychiatry, which will undoubtedly benefit patients through the development of better, more targeted therapies.
Perhaps most importantly, DBS represents a scientific renaissance in systems neuroscience. It is allowing the functional mapping of previously uncharted neurons and is revealing the behavioral consequences of the activation or dampening of specific brain circuits. And it is only just getting started. With more than 700 DBS-related research manuscripts published each year, in all likelihood we will soon see electrodes being put into place to treat many more disorders of the brain.

A magical cure?

View full size JPG | PDF© THOM GRAVESI began my work on DBS in 1990 with my mentor Ronald Tasker at Toronto Western Hospital. In those days, we used DBS to treat patients suffering intractable pain after strokes or spinal cord injury, and to treat phantom limb pain in amputee patients. We targeted two areas—either sensory pathways to stimulate pain-processing areas of the brain, or the brain’s periventricular/periaqueductal regions to modify the perception of pain by modulating the interaction of different neurons, rather than simply the activation of pain receptor neurons. Electrical stimulation is usually administered round the clock using small pulses delivered at a rate of at anywhere from 20 to 200 times per second. Approximately one-half of patients received substantial alleviation of their severe pain. This approach is somewhat underutilized today, but is worthy of reexamination and further study.
We leveraged this experience and combined it with conceptual advances and surgical developments in the field of Parkinson’s disease, and soon applied DBS to treat that disease and other movement disorders. Many of our Parkinson’s patients, despite the best available medical treatment, were disabled by tremor, rigidity, and slow movements, or by involuntary movements caused by the common Parkinson’s drug levodopa (L-Dopa), which boosts dopamine levels in the brain. We implanted electrodes—usually one in either hemisphere of the brain—in one of several targets: the thalamus, a region critical for relaying motor commands and feedback to and from the cerebral cortex; the globus pallidus, which helps regulate voluntary movements; or the subthalamic nucleus, an area just below the thalamus that is also involved in voluntary movement. (See illustration above.) We found that the best target depended on a patient’s symptoms. In the case of tremor, stimulation of the thalamus is very effective. We suspect that the tremor is caused by approximately 25,000 neurons firing in synchrony. We treat the rigidity, slowness of movements, and drug-induced involuntary movements by implanting electrodes in either the subthalamic nucleus or globus pallidus. Stimulating the neurons to disrupt the synchrony can completely eliminate or significantly ameliorate these symptoms for the duration of the stimulation in most patients without any observable adverse effects.
DBS is now an approved therapy for both Parkinson’s and dystonia, but we have only just scratched the surface of its full potential.
Another disorder for which DBS has proven effective is dystonia, a disorder that causes the body to twist uncontrollably. Children affected by this disorder get progressively more and more twisted until they are unable to move their limbs and become crippled. Young patients also develop secondary complications that can lead to a shortened life span. But stimulating the globus pallidus via DBS often led children whose trunk and limbs were twisted by pathological neuronal outputs to return to normal or near normal function within a few weeks. These cases are among the most dramatic improvements observed following DBS treatment, and highlight the power of brain circuit manipulation in easing motor symptoms of neurologic disease.
DBS is now an approved therapy for both Parkinson’s and dystonia, but we have only just scratched the surface of its full potential. The therapy is now rapidly expanding into the psychiatric field, with ongoing trials for depression, OCD, anorexia nervosa, Tourette syndrome, addiction, and other disorders. Furthermore, early positive results of DBS in Alzheimer’s patients point to its potential in treating neurodegenerative disorders, and there is also evidence in laboratory animals that DBS could even help repair damaged areas of the brain. If true, the therapy could have important applications in a number of degenerative and traumatic disorders. I envision that we will witness a great expansion of indications for DBS as we learn more about how the brain works—in sickness and in health. Research discoveries of several ongoing collaborations, including the Human Connectome Project, which aims to compile as much neural data as possible and make it available to the world, will support the development of novel DBS therapies.

Finding the right target

TARGETING THE BRAIN: A sagittal MRI shows a DBS electrode penetrating the subcallosal cingulate gyrus (left).

The brains of Alzheimer’s patients (right) showed decreased metabolism (top, blue indicates less glucose use relative to healthy controls). After one month of DBS targeting of the fornix (middle, red indicates increased glucose use relative to baseline at top) or one year of DBS (bottom), notable increases in metabolism are apparent.
COURTESY OF ANDRES LOZANO
Soon after our work on Parkinson’s disease and dystonia, Helen Mayberg of Emory University and I, along with other collaborators, realized that we could potentially use this technology not only in circuits that control movement but also in circuits that control other things, such as mood. Given the large and well-defined population of depressed patients treated in our program at Toronto Western Hospital, we decided to study the effects of DBS in depression, a highly prevalent disorder that often fails to respond to medication or psychotherapy.
With the guidance of Sid Kennedy and Peter Giacobbe, two psychiatrists who study depression, we compared the brains of depressed patients with those of healthy controls, using PET scans to look at the blood flow in different areas, and found that depressed patients showed far less activity in regions of the frontal lobes involved in motivation, drive, and decision making. Those patients displayed higher activity in Brodmann area 25 (BA25), known colloquially as the “sadness center” of the brain. We implanted electrodes in BA25 of patients with depression to see if DBS could tame this overactive region. (See illustration above.) After several months of continuous stimulation, we observed a dramatic decrease in the activity of BA25 and a reversal of some of the metabolic abnormalities seen in the depressed brain.1 More importantly, we saw very striking clinical benefit in these patients. We are now conducting a Phase 3 trial of DBS in approximately 200 patients with treatment-resistant depression. Based on our observations to date, DBS in these patients demonstrates an encouraging profile of safety and effectiveness, and could soon be approved as a new therapy, albeit a life-long one.
In addition to neuroimaging techniques that can reveal regional brain activity, brain lesioning can also help shed light on the most important targets for a particular disorder. In brain lesioning, misfiring neurons or their connections are destroyed, most commonly using a heating probe inserted in the brain. Once the first patients are treated, data on effectiveness and side effects, in combination with continued neuroimaging, can help further focus the targets. Lesioning is an alternative to DBS in certain specific cases and can be effective, but it is irreversible, and any untoward effects can be permanent. Because the dose of DBS at the same site can be adjusted down if adverse effects emerge, it is considered to be a potentially safer alternative.
Comparisons of PET imaging from OCD patients and healthy control subjects have shown hyperactivity in the cortico-striato-thalamo-cortical circuit. This network links the basal ganglia—neuronal clusters critical for the control of motor function and motor learning—to the motor and premotor cortices that dictate actual movement. Other imaging studies have revealed heightened activity of the orbitofrontal cortex, a region involved in decision making, and the caudate nucleus, part of the brain’s learning and memory system, when a patient’s OCD symptoms are aggravated. Based on these results and clinical experience studying the effects of lesions in these areas, multiple brain regions have been targeted by DBS in OCD patients. (See illustration above.) So far, the results are promising: at least half of the patients treated with DBS showed a 40–60 percent decrease in OCD symptoms,2 and several trials are pushing this therapy toward approval.
DBS has also shown promise in the treatment of Tourette’s syndrome. Early studies have targeted the medial thalamus including the centromedian-parafascicular (CM/pf) complex, a crucial nexus in the brain circuit that includes the striatum; the globus pallidus, which is involved in voluntary movement; and the thalamus. And the results have been positive, with patients in one study demonstrating a 50 percent reduction in the severity of the tics that characterize the disorder.3 Other researchers have targeted the bilateral internal globus pallidus (GPi) with DBS, and still others the external globus pallidus (GPe). All of these studies yielded positive findings.
Other psychiatric disorders currently under study for their responses to DBS include addiction, bipolar disorder, and anorexia. In March 2013, for example, my group reported on the treatment of six anorexia patients in a Phase 1 trial of DBS.4 In this study, we stimulated the subcallosal cingulate, an area that has previously been targeted in DBS treatment of drug-resistant depression. Three of the six patients showed improvements in their physical status—benefits that seemed to be mediated by improvements in mood and anxiety rather than caused by a direct effect on appetite. Despite these promising clinical outcomes, however, many questions remain. The best brain regions to target with DBS and the most effective way of stimulating those areas are still not clear for most psychiatric conditions.
In addition to developing into a broadly applicable therapeutic strategy, DBS is also proving its worth as a research tool.
Another potential application of DBS that we are exploring is to stimulate areas of memory, which are impaired in patients with Alzheimer’s disease. We have placed electrodes in an area of the brain called the fornix—the “highway” in and out of the hippocampus and a key player in memory formation. By stimulating this brain region with DBS in patients with mild to moderate Alzheimer’s disease, we were able to drive activity in the fornix and its downstream targets in patients who had demonstrated impaired activity in this region. (See illustration above.) In other words, DBS was effectively mimicking the physiological activity of neurons lost as a consequence of neuronal degeneration. These changes were accompanied by increases in the brain’s glucose consumption in the temporal and parietal lobes. (See brain scans.) We are now in a Phase 2 trial of 50 patients with early Alzheimer’s disease to see whether DBS is safe and effective in this context and whether it can improve their neurological function.

Probing brains for research

In addition to developing into a broadly applicable therapeutic strategy, DBS is also proving its worth as a research tool. In the treatment of movement disorders such as Parkinson’s disease, researchers have found that stimulating activity in the basal ganglia and thalamic nuclei affects speech and language. Indeed, DBS had previously been noted to affect certain linguistic functions, such as grammar.5 While this is an obvious concern in terms of the safety of this treatment, it could also serve as a unique opportunity for language researchers, who can monitor DBS-treated patients for clues regarding how the brain processes language.6
In addition to what researchers can glean from the ongoing clinical work, DBS in rodent models is also proving useful for elucidating the mechanisms by which the technique provides benefits to patients suffering from myriad neurological disorders. In the field of depression research, numerous groups have taken to stimulating different regions of the rodent brain to identify local tissue inactivation, the modulation of fiber pathways, the serotonergic system, and brain-derived neurotrophic factor as possible corollaries to the antidepressant effects of DBS in humans.7 Other researchers are studying DBS in animal models of Parkinson’s disease, dystonia, epilepsy, pain, cognitive disorders, OCD, and depression. While stimulation of animal brains is not a new technique, the success of DBS in the clinic has undoubtedly fueled this area of research.
For these and other reasons, DBS must be studied using a multidisciplinary approach. Engineers, imaging scientists, basic scientists, neurologists, psychiatrists, neurosurgeons, and others must come together to embrace this increasingly successful clinical tool and promising research strategy. At the interface of these multiple disciplines lies much excitement and hope. In time, I believe that just as the neurosurgeons of antiquity hoped to do, we will be able to chase more of these evil spirits out of the brain, and as a consequence, help many more patients.

Andres Lozano is a professor and the Dan Family Chairman in Neurosurgery at the University of Toronto. He also holds both the R.R. Tasker Chair in Stereotactic and Functional Neurosurgery at University Health Network and a Tier 1 Canada Research Chair in Neuroscience. He is also a consultant for Medtronic, Boston Scientific, Functional Neuromodulation, and St. Jude Medical, Inc.

References

  1. H.S. Mayberg et al., “Deep brain stimulation for treatment-resistant depression,” Neuron, 45:651-60, 2005.
  2. D. Denys, M. Mantione, “Deep brain stimulation in obsessive-compulsive disorder,” Prog Brain Res, 175:419-27, 2009.
  3. L. Ackermans et al., “Double-blind clinical trial of thalamic stimulation in patients with Tourette syndrome,” Brain, 134:832-44, 2011.
  4. N. Lipsman et al., “Subcallosal cingulate deep brain stimulation for treatment-refractory anorexia nervosa: a phase 1 pilot trial,” Lancet, 381:1361-70, 2013.
  5. L. Phillips et al., “Subthalamic nucleus deep brain stimulation impacts language in early Parkinson’s disease,” PLOS ONE, 7:e42829, 2012.
  6. F. Klostermann et al., “Learning about language and speech from deep brain stimulation,” J Neurolinguistics, 25:63-73, 2012.
  7. C. Hamani, J.N. Nobrega, “Preclinical studies modeling deep brain stimulation for depression,” Biol Psychiatry, 72:916-23, 2012.

Friday, November 27, 2015

Targeting depression with deep brain stimulation

reposted from emory

Targeting depression with deep brain stimulation

By Sylvia Wrobel | Emory Medicine | April 27, 2015
Electrodes, insulated wire, and a battery-powered pulse generator. These are the components of deep brain stimulation, a technique being used to lift depression, still movement disorders, and calm epileptic seizures.
Electrodes, insulated wire, and a battery-powered pulse generator. These are the components of deep brain stimulation, a technique being used to lift depression, still movement disorders, and calm epileptic seizures. 
Neurosurgeon Robert Gross (foreground, with earpiece) conducts a majority of the deep brain stimulation surgeries performed at Emory.
Neurosurgeon Robert Gross (foreground, with earpiece) conducts a majority of the deep brain stimulation surgeries performed at Emory.
 Implanted electrodes deliver a small amount of electrical current to a specific part of the brain that is overactive in people with depression
Implanted electrodes deliver a small amount of electrical current to a specific part of the brain that is overactive in people with depression
Neurologist Helen Mayberg, who pioneered the use of DBS for patients with treatment-resistant depression, speaks with the patient, who is awake and alert and providing feedback.
Neurologist Helen Mayberg, who pioneered the use of DBS for patients with treatment-resistant depression, speaks with the patient, who is awake and alert and providing feedback.
Many times, as soon as the device is turned on in the operating room the patient will feel an immediate lightening of mood ¿ an indication that the electrodes are in the right place.
Many times, as soon as the device is turned on in the operating room the patient will feel an immediate lightening of mood — an indication that the electrodes are in the right place.
The departments of neurology, psychiatry, and neurosurgery came together to form the Emory Neuromodulation & Technology Innovation Center (ENTICe) to advance the understanding and effectiveness of this therapy.
The departments of neurology, psychiatry, and neurosurgery came together to form the Emory Neuromodulation & Technology Innovation Center (ENTICe) to advance the understanding and effectiveness of this therapy.
A team including neurologist Helen Mayberg and neurosurgeon Robert Gross prepare for deep brain stimulation surgery on a patient with treatmentresistant depression at Emory University Hospital.
A team including neurologist Helen Mayberg and neurosurgeon Robert Gross prepare for deep brain stimulation surgery on a patient with treatment-resistant depression at Emory University Hospital.
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Slide show of the deep brain stimulation (DBS) team at work. DBS involves surgery on a patient's skull, with precise placement of electrodes that will be connected by a thin wire to a battery-powered pulse generator implanted under the collarbone.
Photos by Michael Konomos, Emory University.
The darkest day of Marjorie Stowe's depression came when her long-time psychiatrist told her she obviously was choosing to resist the healing effects of one medication after another, psychotherapy, electric shock. "You must be getting some emotional payoff that prevents you from letting your depression go," he said. "Secretly, you must enjoy being this way."
What's left when your own psychiatrist gives up on you? During the day, praying helped her hold on. At night, she prayed not to wake up.
Growing up in Franklin Springs, Georgia, the youngest of a Pentecostal minister's six children, Stowe was a serious, unsmiling child. She graduated from hometown Emmanuel College, took pre-pharmacy courses at the University of Hawaii, and earned a PharmD from Campbell University in North Carolina. She managed it all — school, then work and marriage — with the help of antidepressants.
Her plunge into suicidal darkness began at 39, after the birth of her daughter. Could it be hormonal? Her gynecologist shook her head, then told Stowe about an Emory neurologist named Helen Mayberg she had just read about, who was doing a special type of brain surgery with electrodes for treatment-resistant depression, with promising results. You have a physical illness of the brain, the gynecologist said. This might be your best hope.
Fifteen percent of Americans have clinical depression during some portion of their lives. A third of those have major depression: suicidal thoughts, a sense of disconnection from the world. For a few of those, the entire arsenal of traditional treatments — therapy, medications, even electroconvulsive therapy — doesn't work. These are the patients Mayberg sees.
Stowe was a model case. Indeed, her long-term depression was so severe, it made it difficult for her to gather the required documentation and go through the long psychiatric interviews.
The day of surgery, Emory neurosurgeon Robert Gross implanted very thin wires with tiny electrodes in two small lobes deep at the midline of Stowe's brain.
Mayberg stood beside Gross, quietly talking to Stowe, guiding her through the process as she often does with patients. Gross was the surgeon, Mayberg the architect and team leader. Precisely where Gross placed the electrodes was based on Mayberg's extensive brain maps, both of activity in different regions of the brains of depressed patients and of the neural cables that connect these regions, allowing communication between them. Stowe was awake to report any sensations when the electrodes were activated. (It's not as bad as it sounds, since the brain has no pain receptors.)
The electrodes' job is to deliver a small amount of electrical current to the specific region of the brain Mayberg discovered is overactive in people with depression. This region, Area 25, serves as a kind of junction box, so adjusting activity here is like tuning the entire depression circuitry. The electrodes are connected to an implantable pulse generator (IPG), a pacemaker-like device placed under Stowe's collarbone. The IPG keeps a steady stream of low voltage flowing into the patient's brain.
As the electrodes are tested in the OR, patients often report an emotional weight being lifted instantaneously—one way the team knows the electrode is in the right place. Within a week after surgery, with the electrical current flowing continuously, Stowe began to notice sunlight, birdsong. Her sense of humor returned. Her boss didn't recognize her on the phone, so changed was her voice.
Marjorie Stowe and daughter
After three decades of severe depression and trying nearly every treatment,
deep brain stimulation helped Marjorie Stowe (above with daughter, Maddie)
reclaim her life and regain the ability to feel joy.
Two years later, Stowe says the procedure has been transformative. "It brought me out of the pit," she says. "People who haven't been there can't understand what a gift it is to feel joy. I always loved my family. Now I enjoy them."
Her 5-year-old daughter, Maddie, doesn't remember the mommy who cried every day, only the happy one involved in her life. They enjoy horseback riding, playing in the park, and getting mani-pedis on girls' days out. Before deep brain stimulation (DBS), Stowe felt completely dependent on her husband, Jeff, a Home Depot project manager. After the procedure, she feels like an equal partner—and it's fun, she says: "Laughing like we used to, motorcycles, camping, Georgia Tech football, happy times with my daughter and stepsons, Joshua, Sean, and Zachary."
She recently started training for a 5-K race, determined to be as healthy physically as she now feels mentally. Jeff refers to her as "the new and improved version."
This major shift in mood and energy level took some getting used to, however. "After 30 years in a kind of prison, it was a big adjustment to suddenly be well," says Stowe. "I didn't know what to do, what to feel." The research team's responsibility doesn't end in the OR, says Mayberg. Stowe receives ongoing treatment from behavioral therapist Cynthia Romero, psychiatrist Patricio Riva Pose, and the rest of the DBS research team.
Now that Stowe's brain is able to focus, thanks to the "reset" of DBS, she is learning to enjoy the moment, to not dread the future, and — hardest of all, she says — to let go of the guilt about what her family went through during her illness.

Full story in Emory Medicine >>