What Is Dystonia? Types & Symptoms Am I a Candidate? DBS vs. Pallidotomy Request Consultation
Division of Functional and Epilepsy Neurosurgery
Interactive Patient Education

Understanding
Dystonia
and Its Surgical Treatment

Dystonia causes an imbalance in opposing muscle forces: Muscles contract involuntarily, twisting the body into abnormal, painful postures. Medications and Botox help, but when they aren't enough, neurosurgery may offer relief.

What Is Dystonia?

A movement disorder in which muscles contract when they shouldn't, and don't fully relax when they should.

Normally, moving a body part smoothly depends on pairs of opposing muscles taking turns: one contracts while its opposite relaxes. In dystonia, that coordination breaks down, and opposing muscles co-contract at the same time, pulling the affected body part into a twisted, sustained, or repetitive posture that the person cannot simply choose to stop. It can affect the neck, eyelids, jaw, voice box, an arm or hand, a leg, or the whole body, and it often worsens with stress, fatigue, or trying to perform a specific task, while easing during sleep.

Most patients start with medications and, for focal forms, botulinum toxin (Botox) injections, which are effective first-line treatments (see below). Neurosurgery is considered when those options no longer provide enough relief, need to be given at doses or frequencies that become impractical, or can't reasonably reach a widespread, generalized pattern of dystonia. Two neurosurgical options are generally available: deep brain stimulation of the globus pallidus internus (GPi), and MRI-guided laser pallidotomy, a targeted lesion in the same structure.

Key Facts
What it is: Involuntary, sustained or repetitive muscle contractions causing abnormal postures or movements
Who it affects: Any age; primary forms often appear in childhood or young adulthood, secondary forms more often in adults
First-line care: Oral medications; botulinum toxin (Botox) injections for focal forms
When surgery is considered: Inadequate relief from medication/Botox, or symptoms too widespread for focal injections
Neurosurgical options: GPi deep brain stimulation; MRI-guided laser pallidotomy

Types of Dystonia

Dystonia looks different depending on which muscles are involved. Select a type below to see its hallmark signs, typical age of onset, and whether a "sensory trick" is commonly seen.

Click on a body part in the figure, or choose a region from this list:

Three views (front, back, side) of full-body muscle anatomy illustration
Opposing muscle groups
Select icon

Select a type on the left, or a region on the figure, to explore how dystonia affects it.

Surgery is Considered after Medications and Botox

Treatment isn't one-size-fits-all: it intensifies in steps, matched to how well symptoms respond at each stage. Most patients are treated successfully, at least for a time, with medication and, for focal dystonia, botulinum toxin, and move to a more intensive option only when the current one is no longer enough.

1

Oral Medications

Anticholinergic drugs such as trihexyphenidyl, muscle relaxants such as baclofen, and sometimes a trial of levodopa (to check for a rare, highly treatable form called dopa-responsive dystonia) are the starting point, especially for generalized or childhood-onset dystonia. Benefit is often modest, and higher doses can cause sedation, dry mouth, or memory and concentration problems, which limits how far this option can be pushed, particularly in adults.

2

Botulinum Toxin (Botox)

For focal dystonia, such as cervical dystonia or blepharospasm, Botox injections are the established first-line treatment. The toxin blocks the nerve signal that tells a muscle to contract, weakening just the targeted muscles for about three to four months, after which the injection is repeated. Roughly seven in ten patients get meaningful relief this way, often for years at a time.

3

Neurosurgery

When symptoms remain intractable at the medication and Botox stage, meaning they stop providing enough relief, need doses or injection intervals that become impractical, or can't realistically reach a generalized pattern involving many muscle groups at once, deep brain stimulation or pallidotomy become the next, more intensive step. This is the focus of the rest of this page.

One practical note: because Botox targets specific injected muscles, it works best for focal and segmental dystonia. Botox is less effective when dystonia is generalized across the body. Neurosurgical therapies such as DBS and pallidotomy are often more effective in these situations because they act centrally on the brain circuit driving the abnormal contractions rather than on individual muscles.

Am I a Candidate for Neurosurgery?

Several factors inform whether, and when, DBS or pallidotomy make sense. Click any factor below to understand how it fits into that conversation.

Select icon

Select a category above, then click any factor to see how it informs candidacy.

Deep Brain Stimulation vs. Pallidotomy

Both target the same brain structure, the globus pallidus internus, but work in fundamentally different ways. Toggle below to compare.

FeatureDeep Brain Stimulation (GPi)Pallidotomy (MRI-Guided Laser)
MechanismChronic electrical stimulation via an implanted electrodePermanent thermal lesion in a small volume of the GPi
HardwareImplanted electrode, extension wire, and battery/pulse generatorNone left behind: no permanent implant
ReversibilityReversible: can be turned off or removedPermanent: the lesion cannot be undone
AdjustabilityFully adjustable: programmed and re-tuned over timeFixed: effect is set at the time of treatment
Bilateral treatmentBoth sides in one or two staged procedures, with an established safety recordHistorically higher risk of speech/swallowing complications when done bilaterally; often approached more cautiously or staged
Effect onsetGradual: often weeks to months after activation and programmingCan begin within days to weeks, sometimes faster than DBS
Long-term maintenanceBattery checks/replacement, periodic programming visitsNone: no device to maintain
MRI after procedureConditional: depends on device model and settingsUnrestricted

Because DBS is adjustable and reversible, most patients who are candidates for brain surgery today are recommended DBS first. Pallidotomy remains a reasonable, effective alternative for patients who cannot be closely followed for programming, prefer not to have permanent hardware, or have other individual reasons to prefer a one-time procedure. Your neurosurgeon and movement disorders neurologist will help you weigh these factors together.

How We Perform DBS Surgery

DBS for Dystonia typically targets the Globus Pallidus Internus (GPi). Nevertheless, we can perform DBS surgery in different ways depending on a patient's preference and circumstances. Each method has its own advantages and disadvantages, but all enable safe and precise placement of the DBS electrode into the proper target.

🧠
Approach 1
Awake with Electrophysiological Mapping
Gold-standard neural precision
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Approach 2
Asleep with Robot & Intra-operative CT
Robotic precision without wakefulness
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🔬
Approach 3
Asleep in the Procedural MRI
Real-time MR guidance
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The Patient Journey

Select each step to learn what happens and why.

1Multidisciplinary Evaluation
Every patient is assessed by a team that includes movement disorders neurology, neurosurgery, and neuropsychology, often over a single day. This confirms the dystonia subtype, reviews prior medication and Botox response, and rules out secondary causes that might change the plan. It also helps patients learn about their own condition and reach an informed decision together with their care team.
2Imaging & Stereotactic Planning
A high-resolution brain MRI maps the GPi target on each side and plans a safe trajectory that avoids blood vessels and critical structures. This planning step is what allows the electrode, or the pallidotomy probe, to be placed with sub-millimeter precision.
3Neurosurgery: DBS or Pallidotomy
Illustration of an awake DBS lead-placement procedure in the operating room, showing the patient positioned with neural monitoring and imaging displays visible.
Illustrative rendering of an awake DBS procedure.

Neurosurgical procedures take place in the operating room and sometimes in a procedural MRI scanner. Either way, you show up to the pre-op admitting area and get checked in by nursing, the anesthesia team, and the surgical team. Operations for DBS or pallidotomy typically last about 4-6 hours.

Using the surgical plan and pre-op MRI/CT, thin probes (electrodes or fiber optics) are guided into the GPi on one or both sides of the brain. In DBS surgery, microelectrode recordings and test stimulation may be conducted to fine-tune lead position. Placement of the pulse generator battery is typically the following week in a brief procedure under general anesthesia. In laser pallidotomy, the key part of the procedure takes place while you are asleep in an MRI scanner. After the ablation, the fiber optics are removed. In both cases patients are typically observed one night after the main procedure.

4Short-Term Follow-Up
In DBS, a few weeks after surgery, the device is turned on and programmed by a movement disorders neurologist. Unlike tremor, which can improve within minutes of stimulation, dystonia typically responds gradually, often over weeks to months, as settings are refined across several follow-up visits. Those who have undergone pallidotomy follow-up within a few weeks as well to assess how the dystonia is responding to the lesion.
5Long-Term Follow-Up
In the case of DBS, programming visits become less frequent once settings are optimized, and medications may be adjusted as needed over time. Batteries are checked periodically and replaced when needed, on a schedule that depends on the device model and how much stimulation is used. After pallidotomy, patients continue to follow-up with neurology to fine-tune medications as needed, to supplement the effects of the lesion.

Focused Ultrasound: Early Promise

An incisionless, investigational approach uses ultrasound energy to create lesions that disrupt abnormal, hyperactive circuits underlying dystonia.

Early / Experimental: Not Yet Standard Care

MRI-guided focused ultrasound (FUS) uses focused sound waves to create a small lesion without any incision. It is FDA-approved for essential tremor and Parkinson's disease, and small pilot studies have now begun testing it for dystonia, most often targeting the ventro-oralis thalamus for focal hand dystonia (such as writer's or musician's cramp), with meaningful improvement reported at 12 months in the patients studied.

A newer, related target has also emerged: pallidothalamic tractotomy, which lesions the pathway connecting the pallidum to the thalamus rather than the pallidum itself. A 2025 pilot study of this thalamic target in ten patients with cervical dystonia reported significant improvement in neck symptoms at six months, an encouraging first signal for a form of dystonia that hadn't previously been studied with FUS.

This evidence is still early: the studies are small, uncontrolled, and short-term. Side effects, including reduced hand dexterity and speech changes in some patients, have been reported. FUS for dystonia is not yet an established alternative to DBS or pallidotomy, and it is not currently a standard offering. Individual patients in special circumstances may be considered candidates for this procedure, though FDA approval and insurance coverage are lacking because of its early, experimental status.

What Outcomes Can Patients Expect?

Evidence-based outcomes from clinical studies and long-term follow-up. Individual results vary with dystonia subtype, cause, and disease duration.

60–90%
Long-term improvement in standardized dystonia rating scales after GPi DBS, measured 4–10 years after surgery. Isolated, genetic, or idiopathic dystonia tends to respond better than acquired forms.
~74%
Average improvement in total dystonia scores reported after bilateral pallidotomy in published case series, with benefit often apparent sooner than with DBS.
Weeks–Months
Typical time course for DBS benefit to build after activation. Pallidotomy's effect can appear somewhat faster, since it does not depend on gradual programming adjustments.

Risks and Side Effects

Both procedures carry the standard risks of any intracranial procedure, including bleeding and infection, each in the range of one to a few percent. With DBS, hardware-related issues, such as infection, lead migration, or device malfunction, can usually be addressed by adjustment, revision, or removal, since nothing about the brain tissue itself is permanently altered. With pallidotomy, because the lesion is permanent, side effects such as speech difficulty, swallowing difficulty, or weakness, while uncommon, cannot be reversed if they occur; this risk is higher when both sides are treated than when one side is treated. Your surgical team will review your individual risk profile in detail before any procedure.

Common Questions

Will Botox stop working over time?
Some patients do notice reduced benefit over years, sometimes because of antibody formation against the toxin, and sometimes simply because the dystonia has progressed or spread. This is one of the more common reasons patients are referred for a neurosurgical evaluation, rather than a sign that something has gone wrong with treatment.
How is deep brain stimulation different from Botox?
Botox works locally, weakening specific injected muscles for a few months at a time. DBS works centrally, delivering continuous electrical stimulation to the brain circuit that is generating the abnormal signals in the first place. That is part of why DBS can help widespread, generalized dystonia in a way that repeated Botox injections cannot practically match.
Is deep brain stimulation reversible?
Yes. The stimulation itself can be turned off, and the device can be reprogrammed or removed. No permanent lesion is created in the brain, which is the central difference from pallidotomy.
If DBS is adjustable, why would anyone choose pallidotomy?
Some patients prefer not to have permanent hardware in their body, cannot commit to the programming visits DBS requires in its first year, or have other individual medical or personal reasons to prefer a one-time procedure. Pallidotomy remains a reasonable, effective option in those situations.
How long until I notice improvement after DBS surgery?
Unlike tremor, which can improve within minutes of turning on stimulation, dystonia usually responds gradually. Many patients notice initial changes within weeks, with benefit continuing to build over several months as programming is refined.
Can dystonia come back after pallidotomy?
The lesion itself is permanent, but dystonia can still evolve over time, particularly in generalized or progressive forms, and some symptoms may reemerge or shift to other body regions. This is one reason DBS's adjustability is often preferred for younger patients or more widespread disease.
Is focused ultrasound available for dystonia?
Not yet, as a standard offering at most centers. The evidence so far comes from small, early pilot studies, mainly in focal hand dystonia and, more recently, cervical dystonia. Ask your movement disorders team whether it is available locally or through a clinical trial, and whether it would be an appropriate option for your specific situation.
What if my dystonia affects more than one part of my body?
Generalized or segmental dystonia, affecting multiple body regions at once, is exactly the pattern where DBS tends to be most valuable, since it acts on the shared brain circuit rather than requiring injections into every affected muscle group.

Meet the Team

Dystonia patients are cared for by the Comprehensive Movement Disorders Center, a multidisciplinary team of neurosurgeons, movement disorders neurologists, and neuropsychologists working together.

See the full Comprehensive Movement Disorders Center team on the Brown Neurosurgery website.

What Is Dystonia? Types & Symptoms Am I a Candidate? DBS vs. Pallidotomy Patient Journey Outcomes FAQ