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Convulsões infantis benignas parciais
ORPHA:166311DOENÇA RARA

Hemangioma cavernoso, também chamado de angioma cavernoso, cavernoma ou cavernoma cerebral é um tipo de tumor vascular benigno ou hemangioma, em que uma coleção de vasos sanguíneos dilatados (aneurismas) formam uma lesão.

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Introdução

O que você precisa saber de cara

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Epilepsia de início precoce com convulsões parciais benignas, frequentemente associadas a febre, mioclonias palpebrais e, por vezes, anormalidades no neurodesenvolvimento. Pode apresentar-se com diversas manifestações, incluindo convulsões febris complexas e crises motoras focais.

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SUS: Sem cobertura SUSScore: 0%
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Sinais e sintomas

O que aparece no corpo e com que frequência cada sintoma acontece

Partes do corpo afetadas

🧠
Neurológico
31 sintomas
💪
Músculos
3 sintomas
🫁
Pulmão
1 sintomas
🫘
Rins
1 sintomas
🧬
Pele e cabelo
1 sintomas
🫃
Digestivo
1 sintomas

+ 15 sintomas em outras categorias

Características mais comuns

Convulsão febril complexa
Convulsão neonatal
Coreoatetose
Crise de mioclonia palpebral
Anormalidade em imagem cerebral
Olhar fixo
53sintomas
Sem dados (53)

Os sintomas variam de pessoa para pessoa. Abaixo estão as 53 características clínicas mais associadas, ordenadas por frequência.

Convulsão febril complexaComplex febrile seizure
Convulsão neonatalNeonatal seizure
CoreoatetoseChoreoathetosis
Crise de mioclonia palpebralEyelid myoclonia seizure
Anormalidade em imagem cerebralBrain imaging abnormality

Linha do tempo da pesquisa

Publicações por ano — veja quando o interesse científico cresceu
Anos de pesquisa11
Últimos 10 anos19publicações
Pico20153 papers
Linha do tempo
20202015Hoje · 2026
Publicações por ano (últimos 10 anos)

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Genética e causas

O que está alterado no DNA e como passa nas famílias

Genes associados

5 genes identificados com associação a esta condição.

SCN8ASodium channel protein type 8 subunit alphaDisease-causing germline mutation(s) inAltamente restrito
FUNÇÃO

Pore-forming subunit of a voltage-gated sodium channel complex assuming opened or closed conformations in response to the voltage difference across membranes and through which sodium ions selectively pass along their electrochemical gradient (PubMed:24874546, PubMed:25239001, PubMed:25725044, PubMed:26900580, PubMed:29726066, PubMed:33245860, PubMed:36696443, PubMed:36823201). Contributes to neuronal excitability by regulating action potential threshold and propagation (PubMed:24874546, PubMed:2

LOCALIZAÇÃO

Cell membraneCell projection, axonCytoplasmic vesicleCell projection, podosome

VIAS BIOLÓGICAS (2)
Interaction between L1 and AnkyrinsPhase 0 - rapid depolarisation
MECANISMO DE DOENÇA

Cognitive impairment with or without cerebellar ataxia

A disorder characterized by markedly delayed cognitive and motor development, attention deficit disorder, and cerebellar ataxia. Features include bilateral esophoria, strabismatic amblyopia, unsustained gaze evoked nystagmus on horizontal gaze, ataxic gait, dysmetria in the upper limbs and dysarthria, with normal strength, tone, and reflexes.

EXPRESSÃO TECIDUAL(Tecido-específico)
Cerebelo
28.2 TPM
Cérebro - Hemisfério cerebelar
26.4 TPM
Brain Frontal Cortex BA9
17.9 TPM
Córtex cerebral
14.8 TPM
Pituitária
10.9 TPM
OUTRAS DOENÇAS (9)
seizures, benign familial infantile, 5developmental and epileptic encephalopathy, 13myoclonus, familial, 2cognitive impairment with or without cerebellar ataxia
HGNC:10596UniProt:Q9UQD0
SCN2ASodium channel protein type 2 subunit alphaDisease-causing germline mutation(s) inAltamente restrito
FUNÇÃO

Mediates the voltage-dependent sodium ion permeability of excitable membranes. Assuming opened or closed conformations in response to the voltage difference across the membrane, the protein forms a sodium-selective channel through which Na(+) ions may pass in accordance with their electrochemical gradient (PubMed:1325650, PubMed:17021166, PubMed:28256214, PubMed:29844171). Implicated in the regulation of hippocampal replay occurring within sharp wave ripples (SPW-R) important for memory (By simi

LOCALIZAÇÃO

Cell membrane

VIAS BIOLÓGICAS (3)
Interaction between L1 and AnkyrinsPhase 0 - rapid depolarisationSensory perception of sweet, bitter, and umami (glutamate) taste
MECANISMO DE DOENÇA

Seizures, benign familial infantile, 3

A form of benign familial infantile epilepsy, a neurologic disorder characterized by afebrile seizures occurring in clusters during the first year of life, without neurologic sequelae. BFIS3 inheritance is autosomal dominant.

EXPRESSÃO TECIDUAL(Tecido-específico)
Cérebro - Hemisfério cerebelar
70.3 TPM
Cerebelo
65.2 TPM
Brain Frontal Cortex BA9
19.3 TPM
Córtex cerebral
11.5 TPM
Brain Nucleus accumbens basal ganglia
9.1 TPM
OUTRAS DOENÇAS (10)
seizures, benign familial infantile, 3episodic ataxia, type 9developmental and epileptic encephalopathy, 11complex neurodevelopmental disorder
HGNC:10588UniProt:Q99250
KCNQ3Potassium voltage-gated channel subfamily KQT member 3Candidate gene tested inAltamente restrito
FUNÇÃO

Pore-forming subunit of the voltage-gated potassium (Kv) M-channel which is responsible for the M-current, a key controller of neuronal excitability (PubMed:16319223, PubMed:27564677, PubMed:28793216, PubMed:9872318). M-channel is composed of pore-forming subunits KCNQ2 and KCNQ3 assembled as heterotetramers (PubMed:14534157, PubMed:16319223, PubMed:27564677, PubMed:9872318). The native M-current has a slowly activating and deactivating potassium conductance which plays a critical role in determ

LOCALIZAÇÃO

Cell membrane

VIAS BIOLÓGICAS (2)
Interaction between L1 and AnkyrinsVoltage gated Potassium channels
MECANISMO DE DOENÇA

Seizures, benign familial neonatal 2

A disorder characterized by clusters of seizures occurring in the first days of life. Most patients have spontaneous remission by 12 months of age and show normal psychomotor development. The disorder is distinguished from benign familial infantile seizures by an earlier age at onset.

EXPRESSÃO TECIDUAL(Tecido-específico)
Brain Frontal Cortex BA9
22.6 TPM
Córtex cerebral
18.2 TPM
Brain Anterior cingulate cortex BA24
17.4 TPM
Brain Nucleus accumbens basal ganglia
15.7 TPM
Brain Caudate basal ganglia
11.6 TPM
OUTRAS DOENÇAS (4)
seizures, benign familial neonatal, 2benign neonatal seizuresbenign familial infantile epilepsyjuvenile myoclonic epilepsy
HGNC:6297UniProt:O43525
PRRT2Proline-rich transmembrane protein 2Disease-causing germline mutation(s) inRestrito
FUNÇÃO

As a component of the outer core of AMPAR complex, may be involved in synaptic transmission in the central nervous system. In hippocampal neurons, in presynaptic terminals, plays an important role in the final steps of neurotransmitter release, possibly by regulating Ca(2+)-sensing. In the cerebellum, may inhibit SNARE complex formation and down-regulate short-term facilitation

LOCALIZAÇÃO

Cell membranePresynaptic cell membraneSynapseCell projection, axonCytoplasmic vesicle, secretory vesicle, synaptic vesicle membranePostsynaptic density membraneCell projection, dendritic spine

MECANISMO DE DOENÇA

Episodic kinesigenic dyskinesia 1

An autosomal dominant form of paroxysmal kinesigenic dyskinesia, a neurologic condition characterized by recurrent and brief attacks of abnormal involuntary movements, triggered by sudden voluntary movement. These attacks usually have onset during childhood or early adulthood and can involve dystonic postures, chorea, or athetosis.

EXPRESSÃO TECIDUAL(Ubíquo)
Cerebelo
606.4 TPM
Cérebro - Hemisfério cerebelar
563.4 TPM
Ovário
183.2 TPM
Brain Frontal Cortex BA9
167.2 TPM
Córtex cerebral
152.5 TPM
OUTRAS DOENÇAS (9)
episodic kinesigenic dyskinesia 1seizures, benign familial infantile, 2infantile convulsions and choreoathetosisfamilial or sporadic hemiplegic migraine
HGNC:30500UniProt:Q7Z6L0
KCNQ2Potassium voltage-gated channel subfamily KQT member 2Candidate gene tested inAltamente restrito
FUNÇÃO

Pore-forming subunit of the voltage-gated potassium (Kv) M-channel which is responsible for the M-current, a key controller of neuronal excitability (PubMed:24277843, PubMed:28793216, PubMed:9836639). M-channel is composed of pore-forming subunits KCNQ2 and KCNQ3 assembled as heterotetramers (PubMed:10781098, PubMed:14534157, PubMed:32884139, PubMed:37857637, PubMed:9836639). The native M-current has a slowly activating and deactivating potassium conductance which plays a critical role in determ

LOCALIZAÇÃO

Cell membrane

VIAS BIOLÓGICAS (2)
Interaction between L1 and AnkyrinsVoltage gated Potassium channels
MECANISMO DE DOENÇA

Seizures, benign familial neonatal 1

A disorder characterized by clusters of seizures occurring in the first days of life. Most patients have spontaneous remission by 12 months of age and show normal psychomotor development. Some rare cases manifest an atypical severe phenotype associated with epileptic encephalopathy and psychomotor retardation. The disorder is distinguished from benign familial infantile seizures by an earlier age at onset. In some patients, neonatal convulsions are followed later in life by myokymia, a benign condition characterized by spontaneous involuntary contractions of skeletal muscles fiber groups that can be observed as vermiform movement of the overlying skin. Electromyography typically shows continuous motor unit activity with spontaneous oligo- and multiplet-discharges of high intraburst frequency (myokymic discharges). Some patients may have isolated myokymia.

EXPRESSÃO TECIDUAL(Tecido-específico)
Cerebelo
166.0 TPM
Cérebro - Hemisfério cerebelar
146.5 TPM
Córtex cerebral
68.1 TPM
Brain Frontal Cortex BA9
64.1 TPM
Brain Anterior cingulate cortex BA24
50.1 TPM
OUTRAS DOENÇAS (7)
seizures, benign familial neonatal, 1developmental and epileptic encephalopathy, 7seizures, benign familial infantile, 3malignant migrating partial seizures of infancy
HGNC:6296UniProt:O43526

Variantes genéticas (ClinVar)

2,375 variantes patogênicas registradas no ClinVar.

🧬 SCN8A: NM_001330260.2(SCN8A):c.4859G>C (p.Arg1620Pro) ()
🧬 SCN8A: NM_001330260.2(SCN8A):c.4612A>G (p.Thr1538Ala) ()
🧬 SCN8A: NM_001330260.2(SCN8A):c.4582A>G (p.Ile1528Val) ()
🧬 SCN8A: NM_001330260.2(SCN8A):c.1124T>C (p.Leu375Ser) ()
🧬 SCN8A: NM_001330260.2(SCN8A):c.1103C>T (p.Thr368Ile) ()
Ver todas no ClinVar

Diagnóstico

Os sinais que médicos procuram e os exames que confirmam

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Remédios, cuidados de apoio e o que precisa acompanhar

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Onde tratar no SUS

Hospitais de referência no Brasil e o protocolo oficial do SUS (PCDT)

🇧🇷 Atendimento SUS — Convulsões infantis benignas parciais

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Publicações mais relevantes

Timeline de publicações
0 papers (10 anos)
#1

Variants in CSMD2 and CSMD3, genes involved in synaptogenesis, are associated with epilepsies.

Epilepsia2025 Nov

The CSMD genes, including CSMD1, CSMD2, and CSMD3, encoding synaptic transmembrane proteins, play important roles in neuronal maturation, growth of dendrites, and processes of synapses. Our recent study showed that CSMD1 was associated with developmental epileptic encephalopathy (DEE) and generalized epilepsy. The significance of CSMD2 and CSMD3 in human disease is unknown. Trio-based whole-exome sequencing was performed in patients with focal epilepsy without acquired etiologies. The gene-disease association was validated by excess and damaging effect of variants, genotype-phenotype correlation, and studies on spatial-temporal and single-cell expression. CSMD2 variants were identified in six and CSMD3 variants were identified in four cases with focal epilepsy. Additional CSMD3 variants were identified in three cases with febrile seizures plus and one case with infantile spasms. The variants included 1 de novo, 1 homozygous, and 12 pairs of compound heterozygous variants. All variants were missense except one and presented no or extremely low minor allele frequencies, which were significantly lower than that of benign variants and higher in excess by multiple statistical analyses. The gene-disease association was further supported by correlation between damage scoring of variants and phenotype severity. The three CSMD genes are expressed predominantly at early development stages, correlated with the neurodevelopment abnormalities/DEE. CSMD1 expression increases significantly starting with later childhood, consistent with the poor prognosis of DEE. CSMD2 presented the highest expression in the developing brain, with predominance in inhibitory neurons, explaining the focal epilepsy and focal cortical dysplasia (FCD). CSMD3 expressed in relatively low levels with less neuron-specificity explained the heterogeneous phenotypes. The CSMD genes are associated with epilepsies, CSMD2 with focal epilepsy/FCD, and CSMD3 with a phenotype spectrum that includes focal epilepsy, febrile seizures, and DEE. The distinct phenotypes of CSMD genes are explained by their features of genetic dependent stage and the development-dependent expression pattern of neuron specificity. The definition of a seizure is an abnormal, hypersynchronous discharge of cortical neurons causing transient signs and symptoms. Epilepsy is brain disorder "characterized by an enduring predisposition to generate epileptic seizures and by the neurobiologic, cognitive, psychological, and social consequences of this condition. The definition of epilepsy requires the occurrence of at least one epileptic seizure." A diagnosis of epilepsy is considered in the following circumstances: Two unprovoked seizures more than 24 hours apart. One unprovoked seizure but with a high recurrence risk (such as abnormal baseline EEG). A diagnosis of an epilepsy syndrome. The terminology and classification of epilepsy have undergone significant change in recent years with the revised International League Against Epilepsy (ILAE) classification of epilepsies in 2017, replacing the 1989 classification. This update encompasses scientific advancement and establishes a viable clinical tool for the practicing clinician while remaining applicable for research and development of anti-epileptic therapies.  Focal Seizures have origins  “within networks limited to one hemisphere. They may be discretely localized or more widely distributed. Focal seizures may originate in subcortical structures.” Focal seizures can be further subclassified according to the following: 1. Motor onset or non-motor onset: Motor:(with subgroups of automatism, atonic, clonic, myoclonic, epileptic spasms, hyperkinetic, tonic) : automatism: coordinated, purposeful, repetitive motor activity, such as lip-smacking or swallowing  ; atonic: focal loss of tone; clonic: focal rhythmic jerking; myoclonic: irregular, brief focal jerking; epileptic spasms: focal flexion or extension of arms with flexion of the trunk ; hyperkinetic: activities such as pedaling or thrashing; tonic: sustained focal stiffening. Non-motor (with subgroups autonomic, behavior arrest, cognitive, emotional, sensory): autonomic: a sense of heat or cold, flushing, gastrointestinal sensations, a sense of heat or cold, piloerection (goosebumps), palpitations, sexual arousal, respiratory changes, or other autonomic effects   ; behavior arrest: behavioral arrest as the predominant aspect of the entire seizure; cognitive: deficits in language, thinking, or associated higher cortical functions, including feelings of déjà vu or jamais vu, hallucinations, or illusions. emotional: emotional changes, such as fear, anxiety, agitation, anger, paranoia, pleasure, joy, laughing (gelastic seizure), or crying (dacrystic seizure). These are often subjective. sensory: somatosensory sensations, such as olfactory, visual, auditory, hot or cold feeling, taste, or vestibular sensations. 2. Intact or non-intact awareness (a surrogate marker for consciousness). Awareness means consciousness during the seizure, not being aware that a seizure has occurred. Impairment of awareness at any point constitutes non-intact awareness. Responsiveness is not a classification criterion by ILAE as focal impaired consciousness seizures can be associated with alertness and responsiveness to basic commands. 3. Focal to bilateral tonic-clonic. This replaces the term "secondarily generalized tonic-clonic." "Bilateral" describes how the seizure propagates as opposed to "generalized" which describes generalized onset of the seizure location. Generalized onset seizures have origins “originating at some point within, and rapidly engaging, bilaterally distributed networks." Most generalized seizures are associated with impaired consciousness, so this is not a descriptive criterion. They are classified as motor or non-motor. As many seizures evolve into tonic-clonic, it is important to characterize the beginning of a seizure in detail. If a certain type of seizure only occurs when generalized (such as absence seizures), the "generalized" may be omitted. 1. Motor (tonic-clonic, clonic, tonic, myoclonic, myoclonic-tonic-clonic, myoclonic-atonic, atonic, epileptic spasms). See above for a description of terms, and the following are identifying characteristics of specific types of generalized onset motor seizures: Tonic-clonic seizure replaces the previous term "grand mal seizure" and is the most recognizable type. If initiated by myoclonic activity, it is classified as myotonic-tonic-clonic. The clonic phase usually decreases over the seizure course. They may be preceded by an "aura" or feeling of impending doom or other autonomic activity, but this does not contribute to focality of the seizure. Generalized clonic seizures begin and end with sustained jerking of the head, neck, face, and trunk. This type is most commonly seen in infants. Tonic seizures involve sustained extension, less commonly flexion, of a muscle group. It should be distinguished from dystonia and athetoid movement caused by antipsychotic medications. Atonic seizures often cause a patient to fall forward or onto the buttocks. In contrast, generalized tonic-clonic seizures generally cause a patient to fall backward. . Epileptic spasms cause flexion or extension of proximal muscles and the trunk. They occur most often in clusters and in infants, where they are called "infantile spasms.". 2. Non-motor or absence (typical, atypical, myoclonic, eyelid myoclonia). The ILAE classification systems retain the distinction between typical and atypical generalized seizures because of different EEG patterns, therapy, and prognosis. Typical generalized seizures with non-motor manifestations are commonly referred to as absence seizures. They present with sudden onset of cessation of activity, blank stare, and unresponsiveness. They usually last several seconds and are usually less than 10 seconds long. If performed during the event, EEG would show generalized epileptiform discharges. Clinically, absence seizures have some similarities to focal onset seizures with impaired consciousness (previously called complex partial seizures). Both present with staring, but they differ clinically as focal onset seizures with impaired consciousness are significantly longer lasting 30 seconds to 2 minutes; in addition to staring other associated signs are as repeated words, screaming, crying, or hallucinations. Absence seizures last only a few seconds and usually are characterized only by momentary inattention. Atypical absence seizures are associated with increased muscle tonic behavior and less abrupt beginning and ending of the event. EEG during the event would show slow, irregular spike-and-wave activity at a rate of <3 per second. Myoclonic seizures are characterized by 3-per-second myoclonic jerks ratcheting the arm upwards and correspond to 3-per-second generalized spike-and-wave readings on EEG. Eyelid myoclonia are eyelid myoclonic jerks accompanied by upward eye deviation. If accompanied by EEG abnormalities with eye closure and photosensitivity, this triad is called Jeavons syndrome. Seizures of unknown onset. If seizures are unwitnessed or unable to be accurately described, they are given this designation. They can be motor, non-motor, or unclassified.  Unclassified refers to seizures without enough descriptive information to classify or those that do not fit into other categories. Often, this includes tonic-clonic seizures for which the start is unwitnessed. There can be significant overlap between the different classifications and differing bystander opinions about the clinical presentations; therefore, the above classifications are only a framework to define seizure origin and type. The recommended classification system first classifies seizures by location (local, generalized, or unknown); then by type of epilepsy disease (focal, generalized, combined, or unknown); and finally, if the seizure and epilepsy type are part of an overall epilepsy syndrome (eg, JME, CAE, JAE). The 2017 ILAE terminology introduces new terminology, such as developmental and epileptic encephalopathy. Furthermore, the 2017 Classification also includes the following changes: 1. "Partial" becomes "focal.". 2. Awareness is used as a classifier of focal seizures. 3. The terms dyscognitive, simple partial, complex partial, psychic, and secondarily generalized are eliminated. 4. New focal seizure types include automatisms, behavior arrest, hyperkinetic, autonomic, cognitive, and emotional. 5. Atonic, clonic, epileptic spasms, myoclonic, and tonic seizures can be of either focal or generalized onset. . 6. Focal to bilateral tonic-clonic seizure replaces secondarily generalized seizure. 7. New generalized seizure types are absence with eyelid myoclonia, myoclonic absence, myoclonic-atonic, myoclonic-tonic-clonic. 8. Seizures of unknown onset may have features that can still be classified. 9. Benign is replaced by the terms self-limited or pharmacoresponsive. This activity will focus on idiopathic (genetic) generalized epilepsy (IGE), one of the most well-recognized subgroups of generalized epilepsies. Idiopathic generalized epilepsy specifically refers to epilepsy syndromes such as juvenile myoclonic epilepsy (JME), juvenile absence epilepsy (JAE), childhood absence epilepsy (CAE), and generalized tonic-clonic seizures alone.

#2

Distinct manifestations and potential mechanisms of seizures due to cortical versus white matter injury in children.

Epilepsy research2024 Jan

To study seizure manifestations and outcomes in children with cortical versus white matter injury, differences potentially explaining variability of epilepsy in children with cerebral palsy. In this population-based retrospective cohort study, MRIs of children with cerebral palsy due to ischemia or haemorrhage were classified according to presence or absence of cortical injury. MRI findings were then correlated with history of neonatal seizures, seizures during childhood, epilepsy syndromes, and seizure outcomes. Of 256 children studied, neonatal seizures occurred in 57 and seizures during childhood occurred in 93. Children with neonatal seizures were more likely to develop seizures during childhood, mostly those with cortical injury. Cortical injury was more strongly associated with (1) developing seizures during childhood, (2) more severe epilepsy syndromes (infantile spasms syndrome, focal epilepsy, Lennox-Gastaut syndrome), and (3) less likelihood of reaching > 2 years without seizures at last follow-up, compared to children without cortical injury. Children without cortical injury, mainly those with white matter injury, were less likely to develop neonatal seizures and seizures during childhood, and when they did, epilepsy syndromes were more commonly febrile seizures and self-limited focal epilepsies of childhood, with most achieving > 2 years without seizures at last follow-up. The presence of cortical injury also influenced seizure occurrence, severity, and outcome within the different predominant injury patterns of the MRI Classification System in cerebral palsy, most notably white matter injury. Epileptogenesis is understood with cortical injury but not well with white matter injury, the latter potentially related to altered postnatal white matter development or myelination leading to apoptosis, abnormal synaptogenesis or altered thalamic connectivity of cortical neurons. These findings, and the potential mechanisms discussed, likely explain the variability of epilepsy in children with cerebral palsy and epilepsy following early-life brain injury in general.

#3

Inosine triphosphate pyrophosphatase: A guardian of the cellular nucleotide pool and potential mediator of RNA function.

Wiley interdisciplinary reviews. RNA2023

Inosine triphosphate pyrophosphatase (ITPase), encoded by the ITPA gene in humans, is an important enzyme that preserves the integrity of cellular nucleotide pools by hydrolyzing the noncanonical purine nucleotides (deoxy)inosine and (deoxy)xanthosine triphosphate into monophosphates and pyrophosphate. Variants in the ITPA gene can cause partial or complete ITPase deficiency. Partial ITPase deficiency is benign but clinically relevant as it is linked to altered drug responses. Complete ITPase deficiency causes a severe multisystem disorder characterized by seizures and encephalopathy that is frequently associated with fatal infantile dilated cardiomyopathy. In the absence of ITPase activity, its substrate noncanonical nucleotides have the potential to accumulate and become aberrantly incorporated into DNA and RNA. Hence, the pathophysiology of ITPase deficiency could arise from metabolic imbalance, altered DNA or RNA regulation, or from a combination of these factors. Here, we review the known functions of ITPase and highlight recent work aimed at determining the molecular basis for ITPA-associated pathogenesis which provides evidence for RNA dysfunction. This article is categorized under: RNA in Disease and Development > RNA in Disease RNA in Disease and Development > RNA in Development.

#4

Mutations in plasticity-related-gene-1 (PRG-1) protein contribute to hippocampal seizure susceptibility and modify epileptic phenotype.

Cerebral cortex (New York, N.Y. : 1991)2023 Jun 08

The Phospholipid Phosphatase Related 4 gene (PLPPR4,  *607813) encodes the Plasticity-Related-Gene-1 (PRG-1) protein. This cerebral synaptic transmembrane-protein modulates cortical excitatory transmission on glutamatergic neurons. In mice, homozygous Prg-1 deficiency causes juvenile epilepsy. Its epileptogenic potential in humans was unknown. Thus, we screened 18 patients with infantile epileptic spasms syndrome (IESS) and 98 patients with benign familial neonatal/infantile seizures (BFNS/BFIS) for the presence of PLPPR4 variants. A girl with IESS had inherited a PLPPR4-mutation (c.896C > G, NM_014839; p.T299S) from her father and an SCN1A-mutation from her mother (c.1622A > G, NM_006920; p.N541S). The PLPPR4-mutation was located in the third extracellular lysophosphatidic acid-interacting domain and in-utero electroporation (IUE) of the Prg-1p.T300S construct into neurons of Prg-1 knockout embryos demonstrated its inability to rescue the electrophysiological knockout phenotype. Electrophysiology on the recombinant SCN1Ap.N541S channel revealed partial loss-of-function. Another PLPPR4 variant (c.1034C > G, NM_014839; p.R345T) that was shown to result in a loss-of-function aggravated a BFNS/BFIS phenotype and also failed to suppress glutamatergic neurotransmission after IUE. The aggravating effect of Plppr4-haploinsufficiency on epileptogenesis was further verified using the kainate-model of epilepsy: double heterozygous Plppr4-/+|Scn1awt|p.R1648H mice exhibited higher seizure susceptibility than either wild-type, Plppr4-/+, or Scn1awt|p.R1648H littermates. Our study shows that a heterozygous PLPPR4 loss-of-function mutation may have a modifying effect on BFNS/BFIS and on SCN1A-related epilepsy in mice and humans.

#5

PRRT2-positive self-limited infantile epilepsy: Initial seizure characteristics and response to sodium channel blockers.

Epilepsia open2023 Jun

Self-limited infantile epilepsy (SeLIE) has distinctive clinical features, and the PRRT2 gene is known to be a considerable genetic cause. There have been a few studies on PRRT2-positive SeLIE only, and anti-seizure medications are often required due to frequent seizures at initial seizure onset. This study aimed to provide clinical information for the early recognition of patients with PRRT2-positive SeLIE and to propose effective anti-seizure medications for seizure control. We retrospectively reviewed 36 patients diagnosed with SeLIE with genetically confirmed pathogenic variants of PRRT2. In addition, six atypical cases with neonatal-onset seizures and unremitting after 3 years of age were included to understand the expanded clinical spectrum of PRRT2-related epilepsy. We analyzed the initial presentation, clinical course, and seizure control response to anti-seizure medications. Patients with PRRT2-related epilepsy had characteristic seizure semiology at the initial presentation, including all afebrile, clustered (n = 23, 63.9%), short-duration (n = 33, 91.7%), and bilateral tonic-clonic seizures (n = 26, 72.2%). Genetic analysis revealed that c. 649dupC was the most common variant, and six patients had a 16p11.2 microdeletion containing the PRRT2 gene. One-third of the patients were sporadic cases without a family history of epilepsy or paroxysmal movement disorders. In the 33 patients treated with anti-seizure medications, sodium channel blockers, such as carbamazepine, were the most effective in seizure control. Our results delineated the clinical characteristics of PRRT2-positive SeLIE, differentiating it from other genetic infantile epilepsies and discovered the effective anti-seizure medications for initial clustered seizure control. If afebrile bilateral tonic-clonic seizures develop in a normally developed infant as a clustered pattern, PRRT2-positive SeLIE should be considered as a possible diagnosis, and sodium channel blockers should be administered as the first medication for seizure control.

Publicações recentes

Ver todas no PubMed

📚 EuropePMCmostrando 19

2025

Variants in CSMD2 and CSMD3, genes involved in synaptogenesis, are associated with epilepsies.

Epilepsia
2024

Distinct manifestations and potential mechanisms of seizures due to cortical versus white matter injury in children.

Epilepsy research
2023

Inosine triphosphate pyrophosphatase: A guardian of the cellular nucleotide pool and potential mediator of RNA function.

Wiley interdisciplinary reviews. RNA
2023

Mutations in plasticity-related-gene-1 (PRG-1) protein contribute to hippocampal seizure susceptibility and modify epileptic phenotype.

Cerebral cortex (New York, N.Y. : 1991)
2023

PRRT2-positive self-limited infantile epilepsy: Initial seizure characteristics and response to sodium channel blockers.

Epilepsia open
2021

ZMYND11 variants are a novel cause of centrotemporal and generalised epilepsies with neurodevelopmental disorder.

Clinical genetics
2021

Seizures in Sotos syndrome: Phenotyping in 49 patients.

Epilepsia open
2021

Self-limited focal epilepsy and childhood apraxia of speech with WAC pathogenic variants.

European journal of paediatric neurology : EJPN : official journal of the European Paediatric Neurology Society
2020

Neonatal SCN2A encephalopathy: A peculiar recognizable electroclinical sequence.

Epilepsy &amp; behavior : E&amp;B
2019

Biallelic inherited SCN8A variants, a rare cause of SCN8A-related developmental and epileptic encephalopathy.

Epilepsia
2018

[Clinical characteristics and genetic features of benign infantile epilepsy with PRRT2 mutation].

Zhonghua er ke za zhi = Chinese journal of pediatrics
2018

A Rare Tumor in Childhood Desmoplastic Infantile Astrocytoma: Two Case Reports.

Sisli Etfal Hastanesi tip bulteni
2018

[Frequency, semiology and prognosis of benign infantile epilepsy].

Revista de neurologia
2017

Association of a synonymous SCN1B variant affecting splicing efficiency with Benign Familial Infantile Epilepsy (BFIE).

European journal of paediatric neurology : EJPN : official journal of the European Paediatric Neurology Society
2016

Glioneuronal tumors of cerebral hemisphere in children: correlation of surgical resection with seizure outcomes and tumor recurrences.

Child's nervous system : ChNS : official journal of the International Society for Pediatric Neurosurgery
2016

Intracranial Infantile Myofibromatosis Mimicking Malignant Brain Tumor: A Case Report and Literature Review.

World neurosurgery
2015

Sleep and epilepsy syndromes.

Neuropediatrics
2015

Single nucleotide variations in CLCN6 identified in patients with benign partial epilepsies in infancy and/or febrile seizures.

PloS one
2015

Treatment of pediatric epilepsy in Poland.

European journal of paediatric neurology : EJPN : official journal of the European Paediatric Neurology Society

Associações

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Comunidades

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Doenças relacionadas

Doenças com sintomas parecidos — ajudam quem ainda está buscando diagnóstico

Referências e fontes

Bases de dados externas citadas neste artigo

Publicações científicas

Artigos indexados no PubMed ligados a esta doença no grafo RarasNet — título, periódico e PMID direto da fonte, sem intermediação de IA.

  1. Variants in CSMD2 and CSMD3, genes involved in synaptogenesis, are associated with epilepsies.
    Epilepsia· 2025· PMID 40632521mais citado
  2. Distinct manifestations and potential mechanisms of seizures due to cortical versus white matter injury in children.
    Epilepsy research· 2024· PMID 38113603mais citado
  3. Inosine triphosphate pyrophosphatase: A guardian of the cellular nucleotide pool and potential mediator of RNA function.
    Wiley interdisciplinary reviews. RNA· 2023· PMID 37092460mais citado
  4. Mutations in plasticity-related-gene-1 (PRG-1) protein contribute to hippocampal seizure susceptibility and modify epileptic phenotype.
    Cerebral cortex (New York, N.Y. : 1991)· 2023· PMID 36977636mais citado
  5. PRRT2-positive self-limited infantile epilepsy: Initial seizure characteristics and response to sodium channel blockers.
    Epilepsia open· 2023· PMID 36775847mais citado
  6. Seizures in Sotos syndrome: Phenotyping in 49 patients.
    Epilepsia Open· 2021· PMID 34033256recente
  7. Association of a synonymous SCN1B variant affecting splicing efficiency with Benign Familial Infantile Epilepsy (BFIE).
    Eur J Paediatr Neurol· 2017· PMID 28566192recente

Bases de dados e fontes oficiais

Identificadores e referências canônicas usadas para montar este verbete.

  1. ORPHA:166311(Orphanet)
  2. MONDO:0015642(MONDO)
  3. GARD:20076(GARD (NIH))
  4. Variantes catalogadas(ClinVar)
  5. Busca completa no PubMed(PubMed)
  6. Q4887960(Wikidata)

Dados compilados pelo RarasNet a partir de fontes abertas (Orphanet, OMIM, MONDO, PubMed/EuropePMC, ClinicalTrials.gov, DATASUS, PCDT/MS). Este conteúdo é informativo e não substitui avaliação médica.

Conteúdo mantido por Agente Raras · Médicos e pesquisadores podem colaborar

Convulsões infantis benignas parciais
Compêndio · Raras BR

Convulsões infantis benignas parciais

ORPHA:166311 · MONDO:0015642
MedGen
UMLS
C5680426
Repurposing
21 candidatos
beclamideanticonvulsant
carbamazepinecarboxamide antiepileptic
eslicarbazepine-acetatesodium channel blocker
+17 outros
Wikidata
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